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HyperText: Endowing FastText with Hyperbolic Geometry

Yudong Zhu, Di Zhou, Jinghui Xiao, Xin Jiang, Xiao Chen, Qun Liu

202034 citationsDOIOpen Access PDF

Abstract

Natural language data exhibit tree-like hierarchical structures such as the hypernymhyponym relations in WordNet. FastText, as the state-of-the-art text classifier based on shallow neural network in Euclidean space, may not model such hierarchies precisely with limited representation capacity. Considering that hyperbolic space is naturally suitable for modeling tree-like hierarchical data, we propose a new model named HyperText for efficient text classification by endowing FastText with hyperbolic geometry. Empirically, we show that HyperText outperforms FastText on a range of text classification tasks with much reduced parameters.

Topics & Concepts

WordNetComputer scienceHypertextArtificial intelligenceClassifier (UML)Hyperbolic spaceHierarchyEuclidean geometryRange (aeronautics)Pattern recognition (psychology)Semantic spaceEuclidean spaceNatural language processingTheoretical computer scienceMathematicsGeometryPure mathematicsWorld Wide WebMarket economyComposite materialMaterials scienceEconomicsComputer Graphics and Visualization TechniquesArtificial Intelligence in GamesParallel Computing and Optimization Techniques