mirror of
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555 lines
22 KiB
C++
555 lines
22 KiB
C++
/*****************************************************************************************
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* *
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* OpenSpace *
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* *
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* Copyright (c) 2014-2021 *
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* *
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* Permission is hereby granted, free of charge, to any person obtaining a copy of this *
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* software and associated documentation files (the "Software"), to deal in the Software *
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* without restriction, including without limitation the rights to use, copy, modify, *
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* merge, publish, 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 the following *
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* conditions: *
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* *
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* The above copyright notice and this permission notice shall be included in all copies *
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* 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, EXPRESS OR IMPLIED, *
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* INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, FITNESS FOR A *
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* PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT *
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* HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF *
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* CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE *
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* OR THE USE OR OTHER DEALINGS IN THE SOFTWARE. *
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****************************************************************************************/
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#include <modules/multiresvolume/rendering/localerrorhistogrammanager.h>
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#include <modules/multiresvolume/rendering/tsp.h>
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#include <openspace/util/progressbar.h>
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#include <ghoul/logging/logmanager.h>
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#include <ghoul/fmt.h>
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namespace {
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constexpr const char* _loggerCat = "LocalErrorHistogramManager";
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} // namespace
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namespace openspace {
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LocalErrorHistogramManager::LocalErrorHistogramManager(TSP* tsp) : _tsp(tsp) {}
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bool LocalErrorHistogramManager::buildHistograms(int numBins) {
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LINFO(fmt::format("Build histograms with {} bins each", numBins));
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_numBins = numBins;
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_file = &(_tsp->file());
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if (!_file->is_open()) {
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return false;
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}
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_minBin = 0.f; // Should be calculated from tsp file
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_maxBin = 1.f; // Should be calculated from tsp file as (maxValue - minValue)
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const unsigned int numOtLevels = _tsp->numOTLevels();
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const unsigned int numOtLeaves = static_cast<unsigned int>(pow(8, numOtLevels - 1));
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const unsigned int numBstLeaves = static_cast<unsigned int>(
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pow(2, _tsp->numBSTLevels() - 1)
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);
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_numInnerNodes = _tsp->numTotalNodes() - numOtLeaves * numBstLeaves;
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_spatialHistograms = std::vector<Histogram>(_numInnerNodes);
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_temporalHistograms = std::vector<Histogram>(_numInnerNodes);
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for (unsigned int i = 0; i < _numInnerNodes; i++) {
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_spatialHistograms[i] = Histogram(_minBin, _maxBin, numBins);
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_temporalHistograms[i] = Histogram(_minBin, _maxBin, numBins);
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}
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// All TSP Leaves
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const int numOtNodes = _tsp->numOTNodes();
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const int otOffset = static_cast<int>((pow(8, numOtLevels - 1) - 1) / 7);
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const int numBstNodes = _tsp->numBSTNodes();
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const int bstOffset = numBstNodes / 2;
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const int numberOfLeaves = numOtLeaves * numBstLeaves;
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LINFO("Building spatial histograms");
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ProgressBar pb1(numberOfLeaves);
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int processedLeaves = 0;
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pb1.print(processedLeaves);
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bool success = true;
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for (int bst = bstOffset; bst < numBstNodes; bst++) {
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for (int ot = otOffset; ot < numOtNodes; ot++) {
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success &= buildFromOctreeChild(bst, ot);
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if (!success) {
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LERROR("Failed in buildFromOctreeChild");
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return false;
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}
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pb1.print(processedLeaves++);
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}
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}
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LINFO("Building temporal histograms");
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ProgressBar pb2(numberOfLeaves);
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processedLeaves = 0;
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pb2.print(processedLeaves);
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for (int ot = otOffset; ot < numOtNodes; ot++) {
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for (int bst = bstOffset; bst < numBstNodes; bst++) {
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success &= buildFromBstChild(bst, ot);
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if (!success) {
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LERROR("Failed in buildFromBstChild");
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return false;
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}
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pb2.print(processedLeaves++);
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}
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}
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return success;
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}
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bool LocalErrorHistogramManager::buildFromOctreeChild(unsigned int bstOffset,
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unsigned int octreeOffset)
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{
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// Add errors to octree parent histogram
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const int numOtNodes = _tsp->numOTNodes();
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const unsigned int childIndex = bstOffset * numOtNodes + octreeOffset;
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const bool isOctreeLeaf = _tsp->isOctreeLeaf(childIndex);
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if (octreeOffset > 0) {
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// Not octree root
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std::vector<float> childValues;
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std::vector<float> parentValues;
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const int octreeParent = parentOffset(octreeOffset, 8);
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const unsigned int parentIndex = bstOffset * numOtNodes + octreeParent;
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const unsigned int parentInnerNodeIndex = brickToInnerNodeIndex(parentIndex);
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if (isOctreeLeaf) {
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childValues = readValues(childIndex);
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}
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else {
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const unsigned int childInnerNodeIndex = brickToInnerNodeIndex(childIndex);
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auto it = _voxelCache.find(childInnerNodeIndex);
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if (it != _voxelCache.end()) {
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childValues = it->second;
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}
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else {
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LERROR(fmt::format(
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"Child {} visited without cache, {}, {}",
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childIndex,
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bstOffset,
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octreeOffset
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));
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return false;
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}
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}
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const int octreeChildIndex = (octreeOffset - 1) % 8;
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if (octreeChildIndex == 0) {
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parentValues = readValues(parentIndex);
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_voxelCache[parentInnerNodeIndex] = parentValues;
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}
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else {
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auto it = _voxelCache.find(parentInnerNodeIndex);
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if (it != _voxelCache.end()) {
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parentValues = it->second;
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}
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else {
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LERROR(fmt::format("Parent {} visited without cache", parentIndex));
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return false;
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}
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}
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// Compare values and add errors to parent histogram
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const unsigned int paddedBrickDim = _tsp->paddedBrickDim();
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const int brickDim = static_cast<int>(_tsp->brickDim());
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const unsigned int padding = (paddedBrickDim - brickDim) / 2;
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glm::vec3 parentOffset = glm::vec3(
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octreeChildIndex % 2,
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(octreeChildIndex / 2) % 2,
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octreeChildIndex / 4
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) * (brickDim / 2.f);
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for (int z = 0; z < brickDim; z++) {
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for (int y = 0; y < brickDim; y++) {
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for (int x = 0; x < brickDim; x++) {
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glm::ivec3 childSamplePoint = glm::ivec3(x, y, z) +
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glm::ivec3(padding);
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glm::vec3 parentSamplePoint = parentOffset +
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glm::vec3(x + 0.5f, y + 0.5f, z + 0.5f) * 0.5f;
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float childValue = childValues[linearCoords(childSamplePoint)];
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float parentValue = interpolate(parentSamplePoint, parentValues);
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// Divide by number of child voxels that will be taken into account
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float rectangleHeight = std::abs(childValue - parentValue) / 8.f;
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_spatialHistograms[parentInnerNodeIndex].addRectangle(
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childValue,
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parentValue,
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rectangleHeight
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);
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}
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}
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}
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const bool isLastOctreeChild = octreeOffset > 0 && octreeChildIndex == 7;
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if (isLastOctreeChild) {
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buildFromOctreeChild(bstOffset, octreeParent);
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}
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}
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if (!isOctreeLeaf) {
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const unsigned int childInnerNodeIndex = brickToInnerNodeIndex(childIndex);
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_voxelCache.erase(childInnerNodeIndex);
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}
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const int bstChildIndex = bstOffset % 2;
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const bool isLastBstChild = bstOffset > 0 && bstChildIndex == 0;
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if (isOctreeLeaf && isLastBstChild) {
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const int bstParent = parentOffset(bstOffset, 2);
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buildFromOctreeChild(bstParent, octreeOffset);
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}
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return true;
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}
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bool LocalErrorHistogramManager::buildFromBstChild(unsigned int bstOffset,
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unsigned int octreeOffset)
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{
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// Add errors to bst parent histogram
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const int numOtNodes = _tsp->numOTNodes();
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const unsigned int childIndex = bstOffset * numOtNodes + octreeOffset;
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const bool isBstLeaf = _tsp->isBstLeaf(childIndex);
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if (bstOffset > 0) {
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// Not BST root
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std::vector<float> childValues;
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std::vector<float> parentValues;
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const int bstParent = parentOffset(bstOffset, 2);
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const unsigned int parentIndex = bstParent * numOtNodes + octreeOffset;
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const unsigned int parentInnerNodeIndex = brickToInnerNodeIndex(parentIndex);
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if (isBstLeaf) {
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childValues = readValues(childIndex);
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}
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else {
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unsigned int childInnerNodeIndex = brickToInnerNodeIndex(childIndex);
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auto it = _voxelCache.find(childInnerNodeIndex);
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if (it != _voxelCache.end()) {
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childValues = it->second;
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}
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else {
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LERROR(fmt::format("Child {} visited without cache", childIndex));
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return false;
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}
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}
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const int bstChildIndex = bstOffset % 2;
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if (bstChildIndex == 1) {
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parentValues = readValues(parentIndex);
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_voxelCache[parentInnerNodeIndex] = parentValues;
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}
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else {
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auto it = _voxelCache.find(parentInnerNodeIndex);
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if (it != _voxelCache.end()) {
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parentValues = it->second;
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}
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else {
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LERROR(fmt::format("Parent {} visited without cache", parentIndex));
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return false;
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}
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}
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// Compare values and add errors to parent histogram
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const unsigned int paddedBrickDim = _tsp->paddedBrickDim();
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const int brickDim = static_cast<int>(_tsp->brickDim());
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const unsigned int padding = (paddedBrickDim - brickDim) / 2;
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for (int z = 0; z < brickDim; z++) {
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for (int y = 0; y < brickDim; y++) {
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for (int x = 0; x < brickDim; x++) {
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glm::ivec3 samplePoint = glm::ivec3(x, y, z) + glm::ivec3(padding);
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unsigned int linearSamplePoint = linearCoords(samplePoint);
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float childValue = childValues[linearSamplePoint];
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float parentValue = parentValues[linearSamplePoint];
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// Divide by number of child voxels that will be taken into account
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float rectangleHeight = std::abs(childValue - parentValue) / 2.f;
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_temporalHistograms[parentInnerNodeIndex].addRectangle(
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childValue,
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parentValue,
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rectangleHeight
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);
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}
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}
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}
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const bool isLastBstChild = bstOffset > 0 && bstChildIndex == 0;
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if (isLastBstChild) {
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buildFromBstChild(bstParent, octreeOffset);
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}
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}
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if (!isBstLeaf) {
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const unsigned int childInnerNodeIndex = brickToInnerNodeIndex(childIndex);
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_voxelCache.erase(childInnerNodeIndex);
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}
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const int octreeChildIndex = (octreeOffset - 1) % 8;
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const bool isLastOctreeChild = octreeOffset > 0 && octreeChildIndex == 7;
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if (isBstLeaf && isLastOctreeChild) {
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const int octreeParent = parentOffset(octreeOffset, 8);
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buildFromBstChild(bstOffset, octreeParent);
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}
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return true;
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}
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bool LocalErrorHistogramManager::loadFromFile(const std::string& filename) {
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std::ifstream file(filename, std::ios::in | std::ios::binary);
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if (!file.is_open()) {
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return false;
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}
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file.read(reinterpret_cast<char*>(&_numInnerNodes), sizeof(int));
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file.read(reinterpret_cast<char*>(&_numBins), sizeof(int));
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file.read(reinterpret_cast<char*>(&_minBin), sizeof(float));
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file.read(reinterpret_cast<char*>(&_maxBin), sizeof(float));
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const int nFloats = _numInnerNodes * _numBins;
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std::vector<float> histogramData(nFloats);
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file.read(reinterpret_cast<char*>(histogramData.data()), sizeof(float) * nFloats);
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_spatialHistograms = std::vector<Histogram>(_numInnerNodes);
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for (unsigned int i = 0; i < _numInnerNodes; ++i) {
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const int offset = i * _numBins;
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// No need to deallocate histogram data, since histograms take ownership.
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float* data = new float[_numBins];
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memcpy(data, &histogramData[offset], sizeof(float) * _numBins);
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_spatialHistograms[i] = Histogram(_minBin, _maxBin, _numBins, data);
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}
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file.read(reinterpret_cast<char*>(histogramData.data()), sizeof(float) * nFloats);
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_temporalHistograms = std::vector<Histogram>(_numInnerNodes);
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for (unsigned int i = 0; i < _numInnerNodes; ++i) {
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const int offset = i * _numBins;
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// No need to deallocate histogram data, since histograms take ownership.
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float* data = new float[_numBins];
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memcpy(data, &histogramData[offset], sizeof(float) * _numBins);
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_temporalHistograms[i] = Histogram(_minBin, _maxBin, _numBins, data);
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}
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file.close();
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return true;
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}
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bool LocalErrorHistogramManager::saveToFile(const std::string& filename) {
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std::ofstream file(filename, std::ios::out | std::ios::binary);
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if (!file.is_open()) {
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return false;
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}
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file.write(reinterpret_cast<char*>(&_numInnerNodes), sizeof(int));
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file.write(reinterpret_cast<char*>(&_numBins), sizeof(int));
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file.write(reinterpret_cast<char*>(&_minBin), sizeof(float));
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file.write(reinterpret_cast<char*>(&_maxBin), sizeof(float));
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const int nFloats = _numInnerNodes * _numBins;
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std::vector<float> histogramData(nFloats);
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for (unsigned int i = 0; i < _numInnerNodes; ++i) {
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int offset = i * _numBins;
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memcpy(
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&histogramData[offset],
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_spatialHistograms[i].data(),
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sizeof(float) * _numBins
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);
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}
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file.write(reinterpret_cast<char*>(histogramData.data()), sizeof(float) * nFloats);
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for (unsigned int i = 0; i < _numInnerNodes; ++i) {
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int offset = i * _numBins;
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memcpy(
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&histogramData[offset],
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_temporalHistograms[i].data(),
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sizeof(float) * _numBins
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);
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}
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file.write(reinterpret_cast<char*>(histogramData.data()), sizeof(float) * nFloats);
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file.close();
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return true;
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}
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unsigned int LocalErrorHistogramManager::linearCoords(glm::vec3 coords) const {
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return linearCoords(glm::ivec3(coords));
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}
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unsigned int LocalErrorHistogramManager::linearCoords(int x, int y, int z) const {
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return linearCoords(glm::ivec3(x, y, z));
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}
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unsigned int LocalErrorHistogramManager::linearCoords(glm::ivec3 coords) const {
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unsigned int paddedBrickDim = _tsp->paddedBrickDim();
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return coords.z * paddedBrickDim * paddedBrickDim + coords.y * paddedBrickDim +
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coords.x;
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}
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float LocalErrorHistogramManager::interpolate(glm::vec3 samplePoint,
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const std::vector<float>& voxels) const
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{
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const int lowX = static_cast<int>(samplePoint.x);
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const int lowY = static_cast<int>(samplePoint.y);
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const int lowZ = static_cast<int>(samplePoint.z);
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const int highX = static_cast<int>(ceil(samplePoint.x));
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const int highY = static_cast<int>(ceil(samplePoint.y));
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const int highZ = static_cast<int>(ceil(samplePoint.z));
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const float interpolatorX = 1.f - (samplePoint.x - lowX);
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const float interpolatorY = 1.f - (samplePoint.y - lowY);
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const float interpolatorZ = 1.f - (samplePoint.z - lowZ);
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const float v000 = voxels[linearCoords(lowX, lowY, lowZ)];
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const float v001 = voxels[linearCoords(lowX, lowY, highZ)];
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const float v010 = voxels[linearCoords(lowX, highY, lowZ)];
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const float v011 = voxels[linearCoords(lowX, highY, highZ)];
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const float v100 = voxels[linearCoords(highX, lowY, lowZ)];
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const float v101 = voxels[linearCoords(highX, lowY, highZ)];
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const float v110 = voxels[linearCoords(highX, highY, lowZ)];
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const float v111 = voxels[linearCoords(highX, highY, highZ)];
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const float v00 = interpolatorZ * v000 + (1.f - interpolatorZ) * v001;
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const float v01 = interpolatorZ * v010 + (1.f - interpolatorZ) * v011;
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const float v10 = interpolatorZ * v100 + (1.f - interpolatorZ) * v101;
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const float v11 = interpolatorZ * v110 + (1.f - interpolatorZ) * v111;
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const float v0 = interpolatorY * v00 + (1.f - interpolatorY) * v01;
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const float v1 = interpolatorY * v10 + (1.f - interpolatorY) * v11;
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return interpolatorX * v0 + (1.f - interpolatorX) * v1;
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}
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const Histogram* LocalErrorHistogramManager::spatialHistogram(
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unsigned int brickIndex) const
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{
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const unsigned int innerNodeIndex = brickToInnerNodeIndex(brickIndex);
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if (innerNodeIndex < _numInnerNodes) {
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return &(_spatialHistograms[innerNodeIndex]);
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}
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else {
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return nullptr;
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}
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}
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const Histogram* LocalErrorHistogramManager::temporalHistogram(
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unsigned int brickIndex) const
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{
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const unsigned int innerNodeIndex = brickToInnerNodeIndex(brickIndex);
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if (innerNodeIndex < _numInnerNodes) {
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return &(_temporalHistograms[innerNodeIndex]);
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}
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else {
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return nullptr;
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}
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}
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int LocalErrorHistogramManager::parentOffset(int offset, int base) const {
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if (offset == 0) {
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return -1;
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}
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const int depth = static_cast<int>(
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floor(log1p(((base - 1) * offset)) / log(base))
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);
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const int firstInLevel = static_cast<int>((pow(base, depth) - 1) / (base - 1));
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const int inLevelOffset = offset - firstInLevel;
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const int parentDepth = depth - 1;
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const int firstInParentLevel = static_cast<int>(
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(pow(base, parentDepth) - 1) / (base - 1)
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);
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const int parentInLevelOffset = inLevelOffset / base;
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|
|
|
const int parentOffset = firstInParentLevel + parentInLevelOffset;
|
|
return parentOffset;
|
|
}
|
|
|
|
std::vector<float> LocalErrorHistogramManager::readValues(unsigned int brickIndex) const {
|
|
const unsigned int paddedBrickDim = _tsp->paddedBrickDim();
|
|
const unsigned int numBrickVals = paddedBrickDim * paddedBrickDim * paddedBrickDim;
|
|
std::vector<float> voxelValues(numBrickVals);
|
|
|
|
std::streampos offset = _tsp->dataPosition() +
|
|
static_cast<long long>(brickIndex*numBrickVals*sizeof(float));
|
|
_file->seekg(offset);
|
|
|
|
_file->read(
|
|
reinterpret_cast<char*>(voxelValues.data()),
|
|
static_cast<size_t>(numBrickVals)*sizeof(float)
|
|
);
|
|
|
|
return voxelValues;
|
|
}
|
|
|
|
unsigned int LocalErrorHistogramManager::brickToInnerNodeIndex(
|
|
unsigned int brickIndex) const
|
|
{
|
|
const unsigned int numOtNodes = _tsp->numOTNodes();
|
|
const unsigned int numBstLevels = _tsp->numBSTLevels();
|
|
const unsigned int numInnerBstNodes = static_cast<unsigned int>(
|
|
(pow(2, numBstLevels - 1) - 1) * numOtNodes
|
|
);
|
|
if (brickIndex < numInnerBstNodes) {
|
|
return brickIndex;
|
|
}
|
|
|
|
const unsigned int numOtLeaves = static_cast<unsigned int>(
|
|
pow(8, _tsp->numOTLevels() - 1)
|
|
);
|
|
const unsigned int numOtInnerNodes = (numOtNodes - numOtLeaves);
|
|
|
|
const unsigned int innerBstOffset = brickIndex - numInnerBstNodes;
|
|
const unsigned int rowIndex = innerBstOffset / numOtNodes;
|
|
const unsigned int indexInRow = innerBstOffset % numOtNodes;
|
|
|
|
if (indexInRow >= numOtInnerNodes) {
|
|
return _numInnerNodes;
|
|
}
|
|
|
|
const unsigned int offset = rowIndex * numOtInnerNodes;
|
|
const unsigned int leavesOffset = offset + indexInRow;
|
|
|
|
return numInnerBstNodes + leavesOffset;
|
|
}
|
|
|
|
unsigned int LocalErrorHistogramManager::innerNodeToBrickIndex(
|
|
unsigned int innerNodeIndex) const
|
|
{
|
|
const unsigned int numOtNodes = _tsp->numOTNodes();
|
|
const unsigned int numBstLevels = _tsp->numBSTLevels();
|
|
const unsigned int numInnerBstNodes = static_cast<unsigned int>(
|
|
(pow(2, numBstLevels - 1) - 1) * numOtNodes
|
|
);
|
|
if (innerNodeIndex < numInnerBstNodes) {
|
|
return innerNodeIndex;
|
|
}
|
|
|
|
const unsigned int numOtLeaves = static_cast<unsigned int>(
|
|
pow(8, _tsp->numOTLevels() - 1)
|
|
);
|
|
const unsigned int numOtInnerNodes = (numOtNodes - numOtLeaves);
|
|
|
|
const unsigned int innerBstOffset = innerNodeIndex - numInnerBstNodes;
|
|
const unsigned int rowIndex = innerBstOffset / numOtInnerNodes;
|
|
const unsigned int indexInRow = innerBstOffset % numOtInnerNodes;
|
|
|
|
const unsigned int offset = rowIndex * numOtNodes;
|
|
const unsigned int leavesOffset = offset + indexInRow;
|
|
|
|
return numInnerBstNodes + leavesOffset;
|
|
}
|
|
|
|
} // namespace openspace
|
|
|