203 lines
7.2 KiB
C++
203 lines
7.2 KiB
C++
/*
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* Copyright (C) 2018 Emeric Poupon
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*
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* This file is part of LMS.
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*
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* LMS is free software: you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation, either version 3 of the License, or
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* (at your option) any later version.
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*
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* LMS is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with LMS. If not, see <http://www.gnu.org/licenses/>.
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*/
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#pragma once
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#include <algorithm>
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#include <functional>
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#include <optional>
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#include <string>
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#include <unordered_map>
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#include <vector>
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#include "core/Utils.hpp"
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#include "som/DataNormalizer.hpp"
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#include "som/Network.hpp"
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#include "FeaturesDefs.hpp"
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#include "FeaturesEngineCache.hpp"
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#include "IEngine.hpp"
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namespace lms::db
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{
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class Session;
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}
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namespace lms::recommendation
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{
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using FeatureWeight = double;
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class FeaturesEngine : public IEngine
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{
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public:
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FeaturesEngine(db::Db& db)
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: _db{ db } {}
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FeaturesEngine(const FeaturesEngine&) = delete;
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FeaturesEngine(FeaturesEngine&&) = delete;
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FeaturesEngine& operator=(const FeaturesEngine&) = delete;
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FeaturesEngine& operator=(FeaturesEngine&&) = delete;
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static const FeatureSettingsMap& getDefaultTrainFeatureSettings();
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private:
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void load(bool forceReload, const ProgressCallback& progressCallback) override;
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void requestCancelLoad() override;
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TrackContainer findSimilarTracksFromTrackList(db::TrackListId tracklistId, std::size_t maxCount) const override;
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TrackContainer findSimilarTracks(const std::vector<db::TrackId>& tracksId, std::size_t maxCount) const override;
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ReleaseContainer getSimilarReleases(db::ReleaseId releaseId, std::size_t maxCount) const override;
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ArtistContainer getSimilarArtists(db::ArtistId artistId, core::EnumSet<db::TrackArtistLinkType> linkTypes, std::size_t maxCount) const override;
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void loadFromCache(FeaturesEngineCache&& cache);
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// Use training (may be very slow)
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struct TrainSettings
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{
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std::size_t iterationCount{ 10 };
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float sampleCountPerNeuron{ 4 };
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FeatureSettingsMap featureSettingsMap;
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};
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void loadFromTraining(const TrainSettings& trainSettings, const ProgressCallback& progressCallback);
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template<typename IdType>
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using ObjectPositions = std::unordered_map<IdType, std::vector<som::Position>>;
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using ArtistPositions = ObjectPositions<db::ArtistId>;
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using ReleasePositions = ObjectPositions<db::ReleaseId>;
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using TrackPositions = ObjectPositions<db::TrackId>;
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template<typename IdType>
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using ObjectMatrix = som::Matrix<std::vector<IdType>>;
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using ArtistMatrix = ObjectMatrix<db::ArtistId>;
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using ReleaseMatrix = ObjectMatrix<db::ReleaseId>;
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using TrackMatrix = ObjectMatrix<db::TrackId>;
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void load(const som::Network& network, const TrackPositions& tracksPosition);
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FeaturesEngineCache toCache() const;
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template<typename IdType>
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static std::vector<som::Position> getMatchingRefVectorsPosition(const std::vector<IdType>& ids, const ObjectPositions<IdType>& objectPositions);
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template<typename IdType>
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static std::vector<IdType> getObjectsIds(const std::vector<som::Position>& positions, const ObjectMatrix<IdType>& objectsMatrix);
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template<typename IdType>
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std::vector<IdType> getSimilarObjects(const std::vector<IdType>& ids,
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const ObjectMatrix<IdType>& objectMatrix,
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const ObjectPositions<IdType>& objectPositions,
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std::size_t maxCount) const;
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db::Db& _db;
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bool _loadCancelled{};
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std::unique_ptr<som::Network> _network;
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double _networkRefVectorsDistanceMedian{};
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ArtistPositions _artistPositions;
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std::unordered_map<db::TrackArtistLinkType, ArtistMatrix> _artistMatrix;
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ReleasePositions _releasePositions;
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ReleaseMatrix _releaseMatrix;
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TrackPositions _trackPositions;
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TrackMatrix _trackMatrix;
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};
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template<typename IdType>
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std::vector<som::Position> FeaturesEngine::getMatchingRefVectorsPosition(const std::vector<IdType>& ids, const ObjectPositions<IdType>& objectPositions)
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{
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std::vector<som::Position> res;
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if (ids.empty())
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return res;
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for (const IdType id : ids)
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{
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auto it = objectPositions.find(id);
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if (it == objectPositions.end())
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continue;
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for (const som::Position& position : it->second)
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core::utils::push_back_if_not_present(res, position);
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}
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return res;
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}
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template<typename IdType>
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std::vector<IdType> FeaturesEngine::getObjectsIds(const std::vector<som::Position>& positions, const ObjectMatrix<IdType>& objectMatrix)
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{
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std::vector<IdType> res;
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for (const som::Position& position : positions)
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{
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for (const IdType id : objectMatrix.get(position))
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core::utils::push_back_if_not_present(res, id);
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}
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return res;
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}
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template<typename IdType>
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std::vector<IdType> FeaturesEngine::getSimilarObjects(const std::vector<IdType>& ids,
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const ObjectMatrix<IdType>& objectMatrix,
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const ObjectPositions<IdType>& objectPositions,
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std::size_t maxCount) const
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{
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std::vector<IdType> res;
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std::vector<som::Position> searchedRefVectorsPosition{ getMatchingRefVectorsPosition(ids, objectPositions) };
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if (searchedRefVectorsPosition.empty())
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return res;
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while (1)
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{
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std::vector<IdType> closestObjectIds{ getObjectsIds(searchedRefVectorsPosition, objectMatrix) };
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// Remove objects that are already in input or already reported
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closestObjectIds.erase(std::remove_if(std::begin(closestObjectIds), std::end(closestObjectIds),
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[&](IdType id) {
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return std::find(std::cbegin(ids), std::cend(ids), id) != std::cend(ids);
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}),
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std::end(closestObjectIds));
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for (IdType id : closestObjectIds)
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{
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if (res.size() == maxCount)
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break;
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core::utils::push_back_if_not_present(res, id);
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}
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if (res.size() == maxCount)
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break;
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// If there is not enough objects, try again with closest neighbour until there is too much distance
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const std::optional<som::Position> closestRefVectorPosition{ _network->getClosestRefVectorPosition(searchedRefVectorsPosition, _networkRefVectorsDistanceMedian * 0.75) };
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if (!closestRefVectorPosition)
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break;
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core::utils::push_back_if_not_present(searchedRefVectorsPosition, closestRefVectorPosition.value());
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}
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return res;
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}
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} // namespace lms::recommendation
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