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    政大機構典藏 > 資訊學院 > 資訊科學系 > 期刊論文 >  Item 140.119/137555


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    题名: Supervised Word Sense Disambiguation on Polysemy with Neural Network Models: A Case Study of BUN in Taiwan Hakka
    作者: 劉吉軒
    Liu , Jyi-Shane
    Lai, Huei-Ling
    Hsu, Hsiao-Ling
    Lin, Chia-Hung
    Chen, Yanhong
    贡献者: 資科系
    日期: 2021-03
    上传时间: 2021-10-27 10:58:54 (UTC+8)
    摘要: While word sense disambiguation (WSD) has been extensively studied in natural language processing, such a task in low-resource languages still receives little attention. Findings based on a few dominant languages may lead to narrow applications. A language-specific WSD system is in need to implement in low-resource languages, for instance, in Taiwan Hakka. This study examines the performance of DNN and Bi-LSTM in WSD tasks on polysemous BUNin Taiwan Hakka. Both models are trained and tested on a small amount of hand-crafted labeled data. Two experiments are designed with four kinds of input features and two window spans to explore what information is needed for the models to achieve their best performance. The results show that to achieve the best performance, DNN and Bi-LSTM models prefer different kinds of input features and window spans.
    關聯: International Journal of Asian Language Processing
    数据类型: article
    DOI 連結: https://doi.org/10.1142/s2717554520500113
    DOI: 10.1142/s2717554520500113
    显示于类别:[資訊科學系] 期刊論文

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