A lot of files were missing copyright field in the header and
the Blender Foundation contributed to them in a sense of bug
fixing and general maintenance.
This change makes it explicit that those files are at least
partially copyrighted by the Blender Foundation.
Note that this does not make it so the Blender Foundation is
the only holder of the copyright in those files, and developers
who do not have a signed contract with the foundation still
hold the copyright as well.
Another aspect of this change is using SPDX format for the
header. We already used it for the license specification,
and now we state it for the copyright as well, following the
FAQ:
https://reuse.software/faq/
196 lines
5.2 KiB
C
196 lines
5.2 KiB
C
/* SPDX-FileCopyrightText: 2023 Blender Foundation
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*
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* SPDX-License-Identifier: GPL-2.0-or-later */
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/** \file
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* \ingroup bke
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*/
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#include "BKE_ocean.h"
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#include "BLI_math.h"
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#include "ocean_intern.h"
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#ifdef WITH_OCEANSIM
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/* -------------------------------------------------------------------- */
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/** \name Ocean Spectrum from EncinoWaves
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* \{ */
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/*
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* Original code from EncinoWaves project Copyright (c) 2015 Christopher Jon Horvath
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* Modifications made to work within blender.
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*
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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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/**
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* alpha_beta_spectrum is a common algorithm for the Pierson-Moskowitz, JONSWAP and TMA models.
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* This is a modified implementation from the EncinoWaves project.
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*/
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static float alpha_beta_spectrum(const float alpha,
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const float beta,
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const float gamma,
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const float omega,
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const float peakomega)
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{
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return (alpha * sqrt(gamma) / pow(omega, 5.0)) * exp(-beta * pow(peakomega / omega, 4.0));
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}
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static float peak_sharpen(const float omega, const float m_peakomega, const float m_gamma)
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{
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const float peak_sharpening_sigma = (omega < m_peakomega) ? 0.07 : 0.09;
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const float peak_sharpening = pow(
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m_gamma, exp(-sqrt((omega - m_peakomega) / (peak_sharpening_sigma * m_peakomega)) / 2.0));
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return peak_sharpening;
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}
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/**
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* Spectrum-type independent modifications.
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*/
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static float ocean_spectrum_wind_and_damp(const Ocean *oc,
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const float kx,
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const float kz,
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const float val)
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{
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const float k2 = kx * kx + kz * kz;
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const float k_mag_inv = 1.0f / k2;
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const float k_dot_w = (kx * k_mag_inv * oc->_wx) + (kz * k_mag_inv * oc->_wz);
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/* Bias towards wind dir. */
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float newval = val * pow(fabs(k_dot_w), oc->_wind_alignment);
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/* Eliminate wavelengths smaller than cutoff. */
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// val *= exp(-k2 * m_cutoff);
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/* Reduce reflected waves. */
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if (k_dot_w < 0.0f) {
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if (oc->_wind_alignment > 0.0) {
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newval *= oc->_damp_reflections;
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}
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}
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return newval;
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}
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static float jonswap(const Ocean *oc, const float k2)
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{
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/* Get our basic JONSWAP value from #alpha_beta_spectrum. */
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const float k_mag = sqrt(k2);
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const float m_omega = GRAVITY * k_mag * tanh(k_mag * oc->_depth);
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const float omega = sqrt(m_omega);
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const float m_fetch = oc->_fetch_jonswap;
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/* Strictly, this should be a random value from a Gaussian (mean 3.3, variance 0.67),
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* clamped 1.0 to 6.0. */
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float m_gamma = oc->_sharpen_peak_jonswap;
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if (m_gamma < 1.0) {
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m_gamma = 1.00;
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}
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if (m_gamma > 6.0) {
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m_gamma = 6.0;
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}
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const float m_windspeed = oc->_V;
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const float m_dimensionlessFetch = fabs(GRAVITY * m_fetch / sqrt(m_windspeed));
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const float m_alpha = 0.076 * pow(m_dimensionlessFetch, -0.22);
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const float m_tau = M_PI * 2;
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const float m_peakomega = m_tau * 3.5 * fabs(GRAVITY / oc->_V) *
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pow(m_dimensionlessFetch, -0.33);
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const float beta = 1.25f;
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float val = alpha_beta_spectrum(m_alpha, beta, GRAVITY, omega, m_peakomega);
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/* Peak sharpening. */
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val *= peak_sharpen(m_omega, m_peakomega, m_gamma);
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return val;
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}
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float BLI_ocean_spectrum_piersonmoskowitz(const Ocean *oc, const float kx, const float kz)
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{
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const float k2 = kx * kx + kz * kz;
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if (k2 == 0.0f) {
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/* No DC component. */
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return 0.0f;
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}
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/* Get Pierson-Moskowitz value from #alpha_beta_spectrum. */
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const float peak_omega_PM = 0.87f * GRAVITY / oc->_V;
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const float k_mag = sqrt(k2);
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const float m_omega = GRAVITY * k_mag * tanh(k_mag * oc->_depth);
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const float omega = sqrt(m_omega);
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const float alpha = 0.0081f;
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const float beta = 1.291f;
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float val = alpha_beta_spectrum(alpha, beta, GRAVITY, omega, peak_omega_PM);
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val = ocean_spectrum_wind_and_damp(oc, kx, kz, val);
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return val;
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}
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float BLI_ocean_spectrum_texelmarsenarsloe(const Ocean *oc, const float kx, const float kz)
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{
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const float k2 = kx * kx + kz * kz;
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if (k2 == 0.0f) {
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/* No DC component. */
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return 0.0f;
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}
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float val = jonswap(oc, k2);
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val = ocean_spectrum_wind_and_damp(oc, kx, kz, val);
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/* TMA modifications to JONSWAP. */
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const float m_depth = oc->_depth;
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const float gain = sqrt(m_depth / GRAVITY);
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const float k_mag = sqrt(k2);
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const float m_omega = GRAVITY * k_mag * tanh(k_mag * oc->_depth);
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const float omega = sqrt(m_omega);
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const float kitaigorodskiiDepth_wh = omega * gain;
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const float kitaigorodskiiDepth = 0.5 + (0.5 * tanh(1.8 * (kitaigorodskiiDepth_wh - 1.125)));
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val *= kitaigorodskiiDepth;
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val = ocean_spectrum_wind_and_damp(oc, kx, kz, val);
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return val;
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}
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float BLI_ocean_spectrum_jonswap(const Ocean *oc, const float kx, const float kz)
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{
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const float k2 = kx * kx + kz * kz;
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if (k2 == 0.0f) {
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/* No DC component. */
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return 0.0f;
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}
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float val = jonswap(oc, k2);
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val = ocean_spectrum_wind_and_damp(oc, kx, kz, val);
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return val;
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}
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/** \} */
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#endif /* WITH_OCEANSIM */
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