535 lines
21 KiB
C++
535 lines
21 KiB
C++
//@HEADER
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// ************************************************************************
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//
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// Kokkos v. 3.0
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// Copyright (2020) National Technology & Engineering
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// Solutions of Sandia, LLC (NTESS).
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//
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// Under the terms of Contract DE-NA0003525 with NTESS,
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// the U.S. Government retains certain rights in this software.
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//
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// Redistribution and use in source and binary forms, with or without
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// modification, are permitted provided that the following conditions are
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// met:
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//
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// 1. Redistributions of source code must retain the above copyright
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// notice, this list of conditions and the following disclaimer.
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//
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// 2. Redistributions in binary form must reproduce the above copyright
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// notice, this list of conditions and the following disclaimer in the
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// documentation and/or other materials provided with the distribution.
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//
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// 3. Neither the name of the Corporation nor the names of the
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// contributors may be used to endorse or promote products derived from
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// this software without specific prior written permission.
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//
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// THIS SOFTWARE IS PROVIDED BY NTESS "AS IS" AND ANY
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// EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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// IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
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// PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL NTESS OR THE
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// CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
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// EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
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// PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
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// PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
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// LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
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// NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
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// SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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//
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// Questions? Contact Christian R. Trott (crtrott@sandia.gov)
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//
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// ************************************************************************
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//@HEADER
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#ifndef KOKKOS_TEST_DUALVIEW_HPP
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#define KOKKOS_TEST_DUALVIEW_HPP
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#include <gtest/gtest.h>
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#include <iostream>
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#include <cstdlib>
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#include <cstdio>
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#include <impl/Kokkos_Timer.hpp>
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#include <Kokkos_Core.hpp>
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#include <Kokkos_Random.hpp>
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#include <cmath>
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#include <chrono>
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namespace Test {
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namespace Impl {
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// This test runs the random number generators and uses some statistic tests to
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// check the 'goodness' of the random numbers:
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// (i) mean: the mean is expected to be 0.5*RAND_MAX
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// (ii) variance: the variance is 1/3*mean*mean
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// (iii) covariance: the covariance is 0
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// (iv) 1-tupledistr: the mean, variance and covariance of a 1D Histrogram
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// of random numbers (v) 3-tupledistr: the mean, variance and covariance of
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// a 3D Histrogram of random numbers
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#define HIST_DIM3D 24
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#define HIST_DIM1D (HIST_DIM3D * HIST_DIM3D * HIST_DIM3D)
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struct RandomProperties {
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uint64_t count;
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double mean;
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double variance;
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double covariance;
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double min;
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double max;
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KOKKOS_INLINE_FUNCTION
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RandomProperties() {
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count = 0;
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mean = 0.0;
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variance = 0.0;
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covariance = 0.0;
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min = 1e64;
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max = -1e64;
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}
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KOKKOS_INLINE_FUNCTION
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RandomProperties& operator+=(const RandomProperties& add) {
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count += add.count;
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mean += add.mean;
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variance += add.variance;
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covariance += add.covariance;
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min = add.min < min ? add.min : min;
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max = add.max > max ? add.max : max;
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return *this;
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}
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KOKKOS_INLINE_FUNCTION
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void operator+=(const volatile RandomProperties& add) volatile {
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count += add.count;
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mean += add.mean;
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variance += add.variance;
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covariance += add.covariance;
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min = add.min < min ? add.min : min;
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max = add.max > max ? add.max : max;
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}
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};
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// FIXME_OPENMPTARGET: Need this for OpenMPTarget because contra to the standard
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// llvm requires the binary operator defined not just the +=
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KOKKOS_INLINE_FUNCTION
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RandomProperties operator+(const RandomProperties& org,
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const RandomProperties& add) {
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RandomProperties val = org;
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val += add;
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return val;
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}
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template <class GeneratorPool, class Scalar>
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struct test_random_functor {
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using rnd_type = typename GeneratorPool::generator_type;
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using value_type = RandomProperties;
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using device_type = typename GeneratorPool::device_type;
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GeneratorPool rand_pool;
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const double mean;
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// NOTE (mfh 03 Nov 2014): Kokkos::rand::max() is supposed to define
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// an exclusive upper bound on the range of random numbers that
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// draw() can generate. However, for the float specialization, some
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// implementations might violate this upper bound, due to rounding
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// error. Just in case, we leave an extra space at the end of each
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// dimension, in the View types below.
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using type_1d =
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Kokkos::View<int[HIST_DIM1D + 1], typename GeneratorPool::device_type>;
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type_1d density_1d;
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using type_3d =
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Kokkos::View<int[HIST_DIM3D + 1][HIST_DIM3D + 1][HIST_DIM3D + 1],
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typename GeneratorPool::device_type>;
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type_3d density_3d;
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test_random_functor(GeneratorPool rand_pool_, type_1d d1d, type_3d d3d)
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: rand_pool(rand_pool_),
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mean(0.5 * Kokkos::rand<rnd_type, Scalar>::max()),
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density_1d(d1d),
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density_3d(d3d) {}
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KOKKOS_INLINE_FUNCTION
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void operator()(int /*i*/, RandomProperties& prop) const {
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using Kokkos::atomic_fetch_add;
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rnd_type rand_gen = rand_pool.get_state();
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for (int k = 0; k < 1024; ++k) {
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const Scalar tmp = Kokkos::rand<rnd_type, Scalar>::draw(rand_gen);
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prop.count++;
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prop.mean += tmp;
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prop.variance += (tmp - mean) * (tmp - mean);
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const Scalar tmp2 = Kokkos::rand<rnd_type, Scalar>::draw(rand_gen);
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prop.count++;
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prop.mean += tmp2;
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prop.variance += (tmp2 - mean) * (tmp2 - mean);
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prop.covariance += (tmp - mean) * (tmp2 - mean);
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const Scalar tmp3 = Kokkos::rand<rnd_type, Scalar>::draw(rand_gen);
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prop.count++;
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prop.mean += tmp3;
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prop.variance += (tmp3 - mean) * (tmp3 - mean);
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prop.covariance += (tmp2 - mean) * (tmp3 - mean);
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// NOTE (mfh 03 Nov 2014): Kokkos::rand::max() is supposed to
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// define an exclusive upper bound on the range of random
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// numbers that draw() can generate. However, for the float
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// specialization, some implementations might violate this upper
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// bound, due to rounding error. Just in case, we have left an
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// extra space at the end of each dimension of density_1d and
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// density_3d.
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//
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// Please note that those extra entries might not get counted in
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// the histograms. However, if Kokkos::rand is broken and only
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// returns values of max(), the histograms will still catch this
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// indirectly, since none of the other values will be filled in.
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const Scalar theMax = Kokkos::rand<rnd_type, Scalar>::max();
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const uint64_t ind1_1d =
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static_cast<uint64_t>(1.0 * HIST_DIM1D * tmp / theMax);
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const uint64_t ind2_1d =
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static_cast<uint64_t>(1.0 * HIST_DIM1D * tmp2 / theMax);
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const uint64_t ind3_1d =
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static_cast<uint64_t>(1.0 * HIST_DIM1D * tmp3 / theMax);
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const uint64_t ind1_3d =
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static_cast<uint64_t>(1.0 * HIST_DIM3D * tmp / theMax);
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const uint64_t ind2_3d =
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static_cast<uint64_t>(1.0 * HIST_DIM3D * tmp2 / theMax);
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const uint64_t ind3_3d =
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static_cast<uint64_t>(1.0 * HIST_DIM3D * tmp3 / theMax);
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atomic_fetch_add(&density_1d(ind1_1d), 1);
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atomic_fetch_add(&density_1d(ind2_1d), 1);
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atomic_fetch_add(&density_1d(ind3_1d), 1);
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atomic_fetch_add(&density_3d(ind1_3d, ind2_3d, ind3_3d), 1);
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}
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rand_pool.free_state(rand_gen);
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}
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};
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template <class DeviceType>
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struct test_histogram1d_functor {
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using value_type = RandomProperties;
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using execution_space = typename DeviceType::execution_space;
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using memory_space = typename DeviceType::memory_space;
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// NOTE (mfh 03 Nov 2014): Kokkos::rand::max() is supposed to define
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// an exclusive upper bound on the range of random numbers that
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// draw() can generate. However, for the float specialization, some
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// implementations might violate this upper bound, due to rounding
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// error. Just in case, we leave an extra space at the end of each
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// dimension, in the View type below.
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using type_1d = Kokkos::View<int[HIST_DIM1D + 1], memory_space>;
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type_1d density_1d;
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double mean;
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test_histogram1d_functor(type_1d d1d, int num_draws)
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: density_1d(d1d), mean(1.0 * num_draws / HIST_DIM1D * 3) {}
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KOKKOS_INLINE_FUNCTION void operator()(
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const typename memory_space::size_type i, RandomProperties& prop) const {
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using size_type = typename memory_space::size_type;
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const double count = density_1d(i);
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prop.mean += count;
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prop.variance += 1.0 * (count - mean) * (count - mean);
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// prop.covariance += 1.0*count*count;
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prop.min = count < prop.min ? count : prop.min;
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prop.max = count > prop.max ? count : prop.max;
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if (i < static_cast<size_type>(HIST_DIM1D - 1)) {
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prop.covariance += (count - mean) * (density_1d(i + 1) - mean);
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}
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}
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};
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template <class DeviceType>
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struct test_histogram3d_functor {
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using value_type = RandomProperties;
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using execution_space = typename DeviceType::execution_space;
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using memory_space = typename DeviceType::memory_space;
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// NOTE (mfh 03 Nov 2014): Kokkos::rand::max() is supposed to define
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// an exclusive upper bound on the range of random numbers that
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// draw() can generate. However, for the float specialization, some
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// implementations might violate this upper bound, due to rounding
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// error. Just in case, we leave an extra space at the end of each
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// dimension, in the View type below.
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using type_3d =
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Kokkos::View<int[HIST_DIM3D + 1][HIST_DIM3D + 1][HIST_DIM3D + 1],
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memory_space>;
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type_3d density_3d;
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double mean;
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test_histogram3d_functor(type_3d d3d, int num_draws)
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: density_3d(d3d), mean(1.0 * num_draws / HIST_DIM1D) {}
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KOKKOS_INLINE_FUNCTION void operator()(
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const typename memory_space::size_type i, RandomProperties& prop) const {
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using size_type = typename memory_space::size_type;
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const double count = density_3d(
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i / (HIST_DIM3D * HIST_DIM3D),
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(i % (HIST_DIM3D * HIST_DIM3D)) / HIST_DIM3D, i % HIST_DIM3D);
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prop.mean += count;
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prop.variance += (count - mean) * (count - mean);
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if (i < static_cast<size_type>(HIST_DIM1D - 1)) {
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const double count_next =
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density_3d((i + 1) / (HIST_DIM3D * HIST_DIM3D),
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((i + 1) % (HIST_DIM3D * HIST_DIM3D)) / HIST_DIM3D,
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(i + 1) % HIST_DIM3D);
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prop.covariance += (count - mean) * (count_next - mean);
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}
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}
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};
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//
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// Templated test that uses the above functors.
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//
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template <class RandomGenerator, class Scalar>
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struct test_random_scalar {
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using rnd_type = typename RandomGenerator::generator_type;
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int pass_mean, pass_var, pass_covar;
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int pass_hist1d_mean, pass_hist1d_var, pass_hist1d_covar;
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int pass_hist3d_mean, pass_hist3d_var, pass_hist3d_covar;
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test_random_scalar(
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typename test_random_functor<RandomGenerator, int>::type_1d& density_1d,
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typename test_random_functor<RandomGenerator, int>::type_3d& density_3d,
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RandomGenerator& pool, unsigned int num_draws) {
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using Kokkos::parallel_reduce;
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using std::cout;
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using std::endl;
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{
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cout << " -- Testing randomness properties" << endl;
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RandomProperties result;
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using functor_type = test_random_functor<RandomGenerator, Scalar>;
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parallel_reduce(num_draws / 1024,
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functor_type(pool, density_1d, density_3d), result);
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// printf("Result: %lf %lf
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// %lf\n",result.mean/num_draws/3,result.variance/num_draws/3,result.covariance/num_draws/2);
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double tolerance = 1.6 * std::sqrt(1.0 / num_draws);
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double mean_expect = 0.5 * Kokkos::rand<rnd_type, Scalar>::max();
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double variance_expect = 1.0 / 3.0 * mean_expect * mean_expect;
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double mean_eps = mean_expect / (result.mean / num_draws / 3) - 1.0;
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double variance_eps =
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variance_expect / (result.variance / num_draws / 3) - 1.0;
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double covariance_eps =
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result.covariance / num_draws / 2 / variance_expect;
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pass_mean = ((-tolerance < mean_eps) && (tolerance > mean_eps)) ? 1 : 0;
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pass_var = ((-1.5 * tolerance < variance_eps) &&
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(1.5 * tolerance > variance_eps))
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? 1
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: 0;
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pass_covar = ((-2.0 * tolerance < covariance_eps) &&
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(2.0 * tolerance > covariance_eps))
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? 1
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: 0;
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cout << "Pass: " << pass_mean << " " << pass_var << " " << mean_eps << " "
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<< variance_eps << " " << covariance_eps << " || " << tolerance
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<< endl;
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}
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{
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cout << " -- Testing 1-D histogram" << endl;
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RandomProperties result;
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using functor_type =
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test_histogram1d_functor<typename RandomGenerator::device_type>;
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parallel_reduce(HIST_DIM1D, functor_type(density_1d, num_draws), result);
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double tolerance = 6 * std::sqrt(1.0 / HIST_DIM1D);
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double mean_expect = 1.0 * num_draws * 3 / HIST_DIM1D;
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double variance_expect =
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1.0 * num_draws * 3 / HIST_DIM1D * (1.0 - 1.0 / HIST_DIM1D);
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double covariance_expect = -1.0 * num_draws * 3 / HIST_DIM1D / HIST_DIM1D;
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double mean_eps = mean_expect / (result.mean / HIST_DIM1D) - 1.0;
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double variance_eps =
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variance_expect / (result.variance / HIST_DIM1D) - 1.0;
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double covariance_eps =
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(result.covariance / HIST_DIM1D - covariance_expect) / mean_expect;
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pass_hist1d_mean = ((-0.0001 < mean_eps) && (0.0001 > mean_eps)) ? 1 : 0;
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pass_hist1d_var =
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((-0.07 < variance_eps) && (0.07 > variance_eps)) ? 1 : 0;
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pass_hist1d_covar =
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((-0.06 < covariance_eps) && (0.06 > covariance_eps)) ? 1 : 0;
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cout << "Density 1D: " << mean_eps << " " << variance_eps << " "
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<< (result.covariance / HIST_DIM1D / HIST_DIM1D) << " || "
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<< tolerance << " " << result.min << " " << result.max << " || "
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<< result.variance / HIST_DIM1D << " "
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<< 1.0 * num_draws * 3 / HIST_DIM1D * (1.0 - 1.0 / HIST_DIM1D)
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<< " || " << result.covariance / HIST_DIM1D << " "
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<< -1.0 * num_draws * 3 / HIST_DIM1D / HIST_DIM1D << endl;
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}
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{
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cout << " -- Testing 3-D histogram" << endl;
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RandomProperties result;
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using functor_type =
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test_histogram3d_functor<typename RandomGenerator::device_type>;
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parallel_reduce(HIST_DIM1D, functor_type(density_3d, num_draws), result);
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double tolerance = 6 * std::sqrt(1.0 / HIST_DIM1D);
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double mean_expect = 1.0 * num_draws / HIST_DIM1D;
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double variance_expect =
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1.0 * num_draws / HIST_DIM1D * (1.0 - 1.0 / HIST_DIM1D);
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double covariance_expect = -1.0 * num_draws / HIST_DIM1D / HIST_DIM1D;
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double mean_eps = mean_expect / (result.mean / HIST_DIM1D) - 1.0;
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double variance_eps =
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variance_expect / (result.variance / HIST_DIM1D) - 1.0;
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double covariance_eps =
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(result.covariance / HIST_DIM1D - covariance_expect) / mean_expect;
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pass_hist3d_mean =
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((-tolerance < mean_eps) && (tolerance > mean_eps)) ? 1 : 0;
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pass_hist3d_var = ((-1.2 * tolerance < variance_eps) &&
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(1.2 * tolerance > variance_eps))
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? 1
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: 0;
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pass_hist3d_covar =
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((-tolerance < covariance_eps) && (tolerance > covariance_eps)) ? 1
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: 0;
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cout << "Density 3D: " << mean_eps << " " << variance_eps << " "
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<< result.covariance / HIST_DIM1D / HIST_DIM1D << " || " << tolerance
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<< " " << result.min << " " << result.max << endl;
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}
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}
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};
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template <class RandomGenerator>
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void test_random(unsigned int num_draws) {
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using std::cout;
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using std::endl;
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typename test_random_functor<RandomGenerator, int>::type_1d density_1d("D1d");
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typename test_random_functor<RandomGenerator, int>::type_3d density_3d("D3d");
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uint64_t ticks =
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std::chrono::high_resolution_clock::now().time_since_epoch().count();
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cout << "Test Seed:" << ticks << endl;
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RandomGenerator pool(ticks);
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cout << "Test Scalar=int" << endl;
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test_random_scalar<RandomGenerator, int> test_int(density_1d, density_3d,
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pool, num_draws);
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ASSERT_EQ(test_int.pass_mean, 1);
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ASSERT_EQ(test_int.pass_var, 1);
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ASSERT_EQ(test_int.pass_covar, 1);
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ASSERT_EQ(test_int.pass_hist1d_mean, 1);
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ASSERT_EQ(test_int.pass_hist1d_var, 1);
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ASSERT_EQ(test_int.pass_hist1d_covar, 1);
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ASSERT_EQ(test_int.pass_hist3d_mean, 1);
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ASSERT_EQ(test_int.pass_hist3d_var, 1);
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ASSERT_EQ(test_int.pass_hist3d_covar, 1);
|
|
deep_copy(density_1d, 0);
|
|
deep_copy(density_3d, 0);
|
|
|
|
cout << "Test Scalar=unsigned int" << endl;
|
|
test_random_scalar<RandomGenerator, unsigned int> test_uint(
|
|
density_1d, density_3d, pool, num_draws);
|
|
ASSERT_EQ(test_uint.pass_mean, 1);
|
|
ASSERT_EQ(test_uint.pass_var, 1);
|
|
ASSERT_EQ(test_uint.pass_covar, 1);
|
|
ASSERT_EQ(test_uint.pass_hist1d_mean, 1);
|
|
ASSERT_EQ(test_uint.pass_hist1d_var, 1);
|
|
ASSERT_EQ(test_uint.pass_hist1d_covar, 1);
|
|
ASSERT_EQ(test_uint.pass_hist3d_mean, 1);
|
|
ASSERT_EQ(test_uint.pass_hist3d_var, 1);
|
|
ASSERT_EQ(test_uint.pass_hist3d_covar, 1);
|
|
deep_copy(density_1d, 0);
|
|
deep_copy(density_3d, 0);
|
|
|
|
cout << "Test Scalar=int64_t" << endl;
|
|
test_random_scalar<RandomGenerator, int64_t> test_int64(
|
|
density_1d, density_3d, pool, num_draws);
|
|
ASSERT_EQ(test_int64.pass_mean, 1);
|
|
ASSERT_EQ(test_int64.pass_var, 1);
|
|
ASSERT_EQ(test_int64.pass_covar, 1);
|
|
ASSERT_EQ(test_int64.pass_hist1d_mean, 1);
|
|
ASSERT_EQ(test_int64.pass_hist1d_var, 1);
|
|
ASSERT_EQ(test_int64.pass_hist1d_covar, 1);
|
|
ASSERT_EQ(test_int64.pass_hist3d_mean, 1);
|
|
ASSERT_EQ(test_int64.pass_hist3d_var, 1);
|
|
ASSERT_EQ(test_int64.pass_hist3d_covar, 1);
|
|
deep_copy(density_1d, 0);
|
|
deep_copy(density_3d, 0);
|
|
|
|
cout << "Test Scalar=uint64_t" << endl;
|
|
test_random_scalar<RandomGenerator, uint64_t> test_uint64(
|
|
density_1d, density_3d, pool, num_draws);
|
|
ASSERT_EQ(test_uint64.pass_mean, 1);
|
|
ASSERT_EQ(test_uint64.pass_var, 1);
|
|
ASSERT_EQ(test_uint64.pass_covar, 1);
|
|
ASSERT_EQ(test_uint64.pass_hist1d_mean, 1);
|
|
ASSERT_EQ(test_uint64.pass_hist1d_var, 1);
|
|
ASSERT_EQ(test_uint64.pass_hist1d_covar, 1);
|
|
ASSERT_EQ(test_uint64.pass_hist3d_mean, 1);
|
|
ASSERT_EQ(test_uint64.pass_hist3d_var, 1);
|
|
ASSERT_EQ(test_uint64.pass_hist3d_covar, 1);
|
|
deep_copy(density_1d, 0);
|
|
deep_copy(density_3d, 0);
|
|
|
|
cout << "Test Scalar=float" << endl;
|
|
test_random_scalar<RandomGenerator, float> test_float(density_1d, density_3d,
|
|
pool, num_draws);
|
|
ASSERT_EQ(test_float.pass_mean, 1);
|
|
ASSERT_EQ(test_float.pass_var, 1);
|
|
ASSERT_EQ(test_float.pass_covar, 1);
|
|
ASSERT_EQ(test_float.pass_hist1d_mean, 1);
|
|
ASSERT_EQ(test_float.pass_hist1d_var, 1);
|
|
ASSERT_EQ(test_float.pass_hist1d_covar, 1);
|
|
ASSERT_EQ(test_float.pass_hist3d_mean, 1);
|
|
ASSERT_EQ(test_float.pass_hist3d_var, 1);
|
|
ASSERT_EQ(test_float.pass_hist3d_covar, 1);
|
|
deep_copy(density_1d, 0);
|
|
deep_copy(density_3d, 0);
|
|
|
|
cout << "Test Scalar=double" << endl;
|
|
test_random_scalar<RandomGenerator, double> test_double(
|
|
density_1d, density_3d, pool, num_draws);
|
|
ASSERT_EQ(test_double.pass_mean, 1);
|
|
ASSERT_EQ(test_double.pass_var, 1);
|
|
ASSERT_EQ(test_double.pass_covar, 1);
|
|
ASSERT_EQ(test_double.pass_hist1d_mean, 1);
|
|
ASSERT_EQ(test_double.pass_hist1d_var, 1);
|
|
ASSERT_EQ(test_double.pass_hist1d_covar, 1);
|
|
ASSERT_EQ(test_double.pass_hist3d_mean, 1);
|
|
ASSERT_EQ(test_double.pass_hist3d_var, 1);
|
|
ASSERT_EQ(test_double.pass_hist3d_covar, 1);
|
|
}
|
|
} // namespace Impl
|
|
|
|
template <typename ExecutionSpace>
|
|
void test_random_xorshift64() {
|
|
#if defined(KOKKOS_ENABLE_SYCL) || defined(KOKKOS_ENABLE_CUDA) || \
|
|
defined(KOKKOS_ENABLE_HIP)
|
|
const int num_draws = 132141141;
|
|
#else // SERIAL, HPX, OPENMP
|
|
const int num_draws = 10240000;
|
|
#endif
|
|
Impl::test_random<Kokkos::Random_XorShift64_Pool<ExecutionSpace>>(num_draws);
|
|
Impl::test_random<Kokkos::Random_XorShift64_Pool<
|
|
Kokkos::Device<ExecutionSpace, typename ExecutionSpace::memory_space>>>(
|
|
num_draws);
|
|
}
|
|
|
|
template <typename ExecutionSpace>
|
|
void test_random_xorshift1024() {
|
|
#if defined(KOKKOS_ENABLE_SYCL) || defined(KOKKOS_ENABLE_CUDA) || \
|
|
defined(KOKKOS_ENABLE_HIP)
|
|
const int num_draws = 52428813;
|
|
#else // SERIAL, HPX, OPENMP
|
|
const int num_draws = 10130144;
|
|
#endif
|
|
Impl::test_random<Kokkos::Random_XorShift1024_Pool<ExecutionSpace>>(
|
|
num_draws);
|
|
Impl::test_random<Kokkos::Random_XorShift1024_Pool<
|
|
Kokkos::Device<ExecutionSpace, typename ExecutionSpace::memory_space>>>(
|
|
num_draws);
|
|
}
|
|
} // namespace Test
|
|
|
|
#endif // KOKKOS_TEST_UNORDERED_MAP_HPP
|