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SPMM: A soft piecewise mapping model for bilingual lexicon induction

  • Yan Fan
  • , Chengyu Wang
  • , Boxing Chen
  • , Zhongkai Hu
  • , Xiaofeng He*
  • *此作品的通讯作者
  • East China Normal University
  • Alibaba Group Holding Ltd.

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Bilingual Lexicon Induction (BLI) aims at inducing word translations in two distinct languages. The generated bilingual dictionaries via BLI are essential for cross-lingual NLP applications. Most existing methods assume that a mapping matrix can be learned to project the embedding of a word in the source language to that of a word in the target language which shares the same meaning. However, a single matrix may not be able to provide sufficiently large parameter space and to tailor to the semantics of words across different domains and topics due to the complicated nature of linguistic regularities. In this paper, we propose a Soft Piecewise Mapping Model (SPMM). It generates word alignments in two languages by learning multiple mapping matrices with orthogonal constraint. Each matrix encodes the embedding translation knowledge over a distribution of latent topics in the embedding spaces. Such learning problem can be formulated as an extended version of the Wahba’s problem, with a closed-form solution derived. To address the limited size of training data for low-resourced languages and emerging domains, an iterative boosting method based on SPMM is used to augment training dictionaries. Experiments conducted on both general and domain-specific corpora show that SPMM is effective and outperforms previous methods.

源语言英语
主期刊名SIAM International Conference on Data Mining, SDM 2019
出版商Society for Industrial and Applied Mathematics Publications
244-252
页数9
ISBN(电子版)9781611975673
DOI
出版状态已出版 - 2019
活动19th SIAM International Conference on Data Mining, SDM 2019 - Calgary, 加拿大
期限: 2 5月 20194 5月 2019

出版系列

姓名SIAM International Conference on Data Mining, SDM 2019

会议

会议19th SIAM International Conference on Data Mining, SDM 2019
国家/地区加拿大
Calgary
时期2/05/194/05/19

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