Open Named Entity Modeling from Embedding Distribution

August 31, 2019 ยท Declared Dead ยท ๐Ÿ› IEEE Transactions on Knowledge and Data Engineering

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Authors Ying Luo, Hai Zhao, Zhuosheng Zhang, Bingjie Tang arXiv ID 1909.00170 Category cs.CL: Computation & Language Cross-listed cs.IR Citations 3 Venue IEEE Transactions on Knowledge and Data Engineering Last Checked 5 months ago
Abstract
In this paper, we report our discovery on named entity distribution in a general word embedding space, which helps an open definition on multilingual named entity definition rather than previous closed and constraint definition on named entities through a named entity dictionary, which is usually derived from human labor and replies on schedule update. Our initial visualization of monolingual word embeddings indicates named entities tend to gather together despite of named entity types and language difference, which enable us to model all named entities using a specific geometric structure inside embedding space, namely, the named entity hypersphere. For monolingual cases, the proposed named entity model gives an open description of diverse named entity types and different languages. For cross-lingual cases, mapping the proposed named entity model provides a novel way to build a named entity dataset for resource-poor languages. At last, the proposed named entity model may be shown as a handy clue to enhance state-of-the-art named entity recognition systems generally.
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