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ccff24597f
Also optimize some of the Noise methods
303 lines
12 KiB
C++
303 lines
12 KiB
C++
/**************************************************************************/
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/* noise.h */
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/**************************************************************************/
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/* This file is part of: */
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/* GODOT ENGINE */
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/* https://godotengine.org */
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/**************************************************************************/
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/* Copyright (c) 2014-present Godot Engine contributors (see AUTHORS.md). */
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/* Copyright (c) 2007-2014 Juan Linietsky, Ariel Manzur. */
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/* */
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/* Permission is hereby granted, free of charge, to any person obtaining */
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/* a copy of this software and associated documentation files (the */
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/* "Software"), to deal in the Software without restriction, including */
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/* without limitation the rights to use, copy, modify, merge, publish, */
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/* distribute, sublicense, and/or sell copies of the Software, and to */
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/* permit persons to whom the Software is furnished to do so, subject to */
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/* the following conditions: */
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/* */
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/* The above copyright notice and this permission notice shall be */
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/* included in all copies or substantial portions of the Software. */
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/* */
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/* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, */
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/* EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF */
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/* MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. */
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/* IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY */
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/* CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, */
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/* TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE */
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/* SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE. */
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/**************************************************************************/
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#ifndef NOISE_H
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#define NOISE_H
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#include "core/io/image.h"
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#include "core/variant/typed_array.h"
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class Noise : public Resource {
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GDCLASS(Noise, Resource);
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// Helper struct for get_seamless_image(). See comments in .cpp for usage.
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template <typename T>
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struct img_buff {
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T *img = nullptr;
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int width; // Array dimensions & default modulo for image.
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int height;
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int offset_x; // Offset index location on image (wrapped by specified modulo).
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int offset_y;
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int alt_width; // Alternate module for image.
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int alt_height;
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enum ALT_MODULO {
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DEFAULT = 0,
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ALT_X,
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ALT_Y,
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ALT_XY
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};
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// Multi-dimensional array indexer (e.g. img[x][y]) that supports multiple modulos.
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T &operator()(int x, int y, ALT_MODULO mode = DEFAULT) {
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switch (mode) {
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case ALT_XY:
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return img[(x + offset_x) % alt_width + ((y + offset_y) % alt_height) * width];
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case ALT_X:
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return img[(x + offset_x) % alt_width + ((y + offset_y) % height) * width];
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case ALT_Y:
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return img[(x + offset_x) % width + ((y + offset_y) % alt_height) * width];
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default:
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return img[(x + offset_x) % width + ((y + offset_y) % height) * width];
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}
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}
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};
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union l2c {
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uint32_t l;
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uint8_t c[4];
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struct {
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uint8_t r;
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uint8_t g;
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uint8_t b;
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uint8_t a;
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};
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};
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template <typename T>
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Vector<Ref<Image>> _generate_seamless_image(Vector<Ref<Image>> p_src, int p_width, int p_height, int p_depth, bool p_invert, real_t p_blend_skirt) const {
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/*
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To make a seamless image, we swap the quadrants so the edges are perfect matches.
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We initially get a 10% larger image so we have an overlap we can use to blend over the seams.
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Noise::img_buff::operator() acts as a multi-dimensional array indexer.
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It does the array math, translates between the flipped and non-flipped quadrants, and manages offsets and modulos.
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Here is how the larger source image and final output image map to each other:
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Output size = p_width*p_height Source w/ extra 10% skirt `s` size = src_width*src_height
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Q1 Q2 Q4 Q3 s1
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Q3 Q4 Q2 Q1 s2
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s5 s4 s3
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All of the loops use output coordinates, so Output:Q1 == Source:Q1
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Ex: Output(half_width, half_height) [the midpoint, corner of Q1/Q4] =>
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on Source it's translated to
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corner of Q1/s3 unless the ALT_XY modulo moves it to Q4
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*/
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ERR_FAIL_COND_V(p_blend_skirt < 0, Vector<Ref<Image>>());
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int skirt_width = MAX(1, p_width * p_blend_skirt);
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int skirt_height = MAX(1, p_height * p_blend_skirt);
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int src_width = p_width + skirt_width;
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int src_height = p_height + skirt_height;
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int half_width = p_width * 0.5;
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int half_height = p_height * 0.5;
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int skirt_edge_x = half_width + skirt_width;
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int skirt_edge_y = half_height + skirt_height;
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Image::Format format = p_src[0]->get_format();
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int pixel_size = Image::get_format_pixel_size(format);
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Vector<Ref<Image>> images;
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images.resize(p_src.size());
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// First blend across x and y for all slices.
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for (int d = 0; d < images.size(); d++) {
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Vector<uint8_t> dest;
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dest.resize(p_width * p_height * pixel_size);
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img_buff<T> rd_src = {
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(T *)p_src[d]->get_data().ptr(),
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src_width, src_height,
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half_width, half_height,
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p_width, p_height
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};
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// `wr` is setup for straight x/y coordinate array access.
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img_buff<T> wr = {
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(T *)dest.ptrw(),
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p_width, p_height,
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0, 0, 0, 0
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};
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// `rd_dest` is a readable pointer to `wr`, i.e. what has already been written to the output buffer.
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img_buff<T> rd_dest = {
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(T *)dest.ptr(),
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p_width, p_height,
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0, 0, 0, 0
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};
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// Swap the quadrants to make edges seamless.
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for (int y = 0; y < p_height; y++) {
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for (int x = 0; x < p_width; x++) {
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// rd_src has a half offset and the shorter modulo ignores the skirt.
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// It reads and writes in Q1-4 order (see map above), skipping the skirt.
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wr(x, y) = rd_src(x, y, img_buff<T>::ALT_XY);
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}
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}
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// Blend the vertical skirt over the middle seam.
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for (int x = half_width; x < skirt_edge_x; x++) {
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int alpha = 255 * (1 - Math::smoothstep(0.1f, 0.9f, float(x - half_width) / float(skirt_width)));
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for (int y = 0; y < p_height; y++) {
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// Skip the center square
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if (y == half_height) {
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y = skirt_edge_y - 1;
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} else {
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// Starts reading at s2, ALT_Y skips s3, and continues with s1.
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wr(x, y) = _alpha_blend<T>(rd_dest(x, y), rd_src(x, y, img_buff<T>::ALT_Y), alpha);
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}
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}
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}
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// Blend the horizontal skirt over the middle seam.
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for (int y = half_height; y < skirt_edge_y; y++) {
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int alpha = 255 * (1 - Math::smoothstep(0.1f, 0.9f, float(y - half_height) / float(skirt_height)));
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for (int x = 0; x < p_width; x++) {
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// Skip the center square
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if (x == half_width) {
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x = skirt_edge_x - 1;
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} else {
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// Starts reading at s4, skips s3, continues with s5.
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wr(x, y) = _alpha_blend<T>(rd_dest(x, y), rd_src(x, y, img_buff<T>::ALT_X), alpha);
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}
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}
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}
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// Fill in the center square. Wr starts at the top left of Q4, which is the equivalent of the top left of s3, unless a modulo is used.
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for (int y = half_height; y < skirt_edge_y; y++) {
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for (int x = half_width; x < skirt_edge_x; x++) {
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int xpos = 255 * (1 - Math::smoothstep(0.1f, 0.9f, float(x - half_width) / float(skirt_width)));
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int ypos = 255 * (1 - Math::smoothstep(0.1f, 0.9f, float(y - half_height) / float(skirt_height)));
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// Blend s3(Q1) onto s5(Q2) for the top half.
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T top_blend = _alpha_blend<T>(rd_src(x, y, img_buff<T>::ALT_X), rd_src(x, y, img_buff<T>::DEFAULT), xpos);
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// Blend s1(Q3) onto Q4 for the bottom half.
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T bottom_blend = _alpha_blend<T>(rd_src(x, y, img_buff<T>::ALT_XY), rd_src(x, y, img_buff<T>::ALT_Y), xpos);
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// Blend the top half onto the bottom half.
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wr(x, y) = _alpha_blend<T>(bottom_blend, top_blend, ypos);
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}
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}
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Ref<Image> image = memnew(Image(p_width, p_height, false, format, dest));
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p_src.write[d].unref();
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images.write[d] = image;
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}
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// Now blend across z.
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if (p_depth > 1) {
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int skirt_depth = MAX(1, p_depth * p_blend_skirt);
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int half_depth = p_depth * 0.5;
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int skirt_edge_z = half_depth + skirt_depth;
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// Swap halves on depth.
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for (int i = 0; i < half_depth; i++) {
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Ref<Image> img = images[i];
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images.write[i] = images[i + half_depth];
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images.write[i + half_depth] = img;
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}
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Vector<Ref<Image>> new_images = images;
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new_images.resize(p_depth);
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// Scale seamless generation to third dimension.
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for (int z = half_depth; z < skirt_edge_z; z++) {
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int alpha = 255 * (1 - Math::smoothstep(0.1f, 0.9f, float(z - half_depth) / float(skirt_depth)));
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Vector<uint8_t> img = images[z % p_depth]->get_data();
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Vector<uint8_t> skirt = images[(z - half_depth) + p_depth]->get_data();
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Vector<uint8_t> dest;
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dest.resize(images[0]->get_width() * images[0]->get_height() * Image::get_format_pixel_size(images[0]->get_format()));
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for (int i = 0; i < img.size(); i++) {
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uint8_t fg, bg, out;
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fg = skirt[i];
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bg = img[i];
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uint16_t a = alpha + 1;
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uint16_t inv_a = 256 - alpha;
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out = (uint8_t)((a * fg + inv_a * bg) >> 8);
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dest.write[i] = out;
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}
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Ref<Image> new_image = memnew(Image(images[0]->get_width(), images[0]->get_height(), false, images[0]->get_format(), dest));
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new_images.write[z % p_depth] = new_image;
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}
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return new_images;
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}
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return images;
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}
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template <typename T>
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T _alpha_blend(T p_bg, T p_fg, int p_alpha) const {
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l2c fg, bg, out;
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fg.l = p_fg;
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bg.l = p_bg;
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uint16_t alpha;
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uint16_t inv_alpha;
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// If no alpha argument specified, use the alpha channel in the color
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if (p_alpha == -1) {
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alpha = fg.c[3] + 1;
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inv_alpha = 256 - fg.c[3];
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} else {
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alpha = p_alpha + 1;
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inv_alpha = 256 - p_alpha;
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}
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out.c[0] = (uint8_t)((alpha * fg.c[0] + inv_alpha * bg.c[0]) >> 8);
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out.c[1] = (uint8_t)((alpha * fg.c[1] + inv_alpha * bg.c[1]) >> 8);
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out.c[2] = (uint8_t)((alpha * fg.c[2] + inv_alpha * bg.c[2]) >> 8);
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out.c[3] = 0xFF;
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return out.l;
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}
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protected:
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static void _bind_methods();
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public:
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// Virtual destructor so we can delete any Noise derived object when referenced as a Noise*.
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virtual ~Noise() {}
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virtual real_t get_noise_1d(real_t p_x) const = 0;
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virtual real_t get_noise_2dv(Vector2 p_v) const = 0;
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virtual real_t get_noise_2d(real_t p_x, real_t p_y) const = 0;
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virtual real_t get_noise_3dv(Vector3 p_v) const = 0;
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virtual real_t get_noise_3d(real_t p_x, real_t p_y, real_t p_z) const = 0;
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Vector<Ref<Image>> _get_image(int p_width, int p_height, int p_depth, bool p_invert = false, bool p_in_3d_space = false, bool p_normalize = true) const;
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virtual Ref<Image> get_image(int p_width, int p_height, bool p_invert = false, bool p_in_3d_space = false, bool p_normalize = true) const;
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virtual TypedArray<Image> get_image_3d(int p_width, int p_height, int p_depth, bool p_invert = false, bool p_normalize = true) const;
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Vector<Ref<Image>> _get_seamless_image(int p_width, int p_height, int p_depth, bool p_invert = false, bool p_in_3d_space = false, real_t p_blend_skirt = 0.1, bool p_normalize = true) const;
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virtual Ref<Image> get_seamless_image(int p_width, int p_height, bool p_invert = false, bool p_in_3d_space = false, real_t p_blend_skirt = 0.1, bool p_normalize = true) const;
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virtual TypedArray<Image> get_seamless_image_3d(int p_width, int p_height, int p_depth, bool p_invert = false, real_t p_blend_skirt = 0.1, bool p_normalize = true) const;
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};
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#endif // NOISE_H
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