淡江大學機構典藏:Item 987654321/108750
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    题名: Machine Learning for Imbalanced Datasets of Recognizing Inference in Text with Linguistic Phenomena
    作者: Day, Min-Yuh;Tsai, Cheng-Chia
    关键词: Imbalanced Datasets;Linguistic Phenomena;Machine Learning;Recognizing Inference in Text;Textual Entailment
    日期: 2015-08-13
    上传时间: 2016-12-07 02:10:43 (UTC+8)
    出版者: IEEE
    摘要: Recognizing inference in text (RITE) plays an important role in the answer validation modules for a Question Answering (QA) system. The problem of class imbalance has received increased attention in the machine learning community. In recent years, several attempts have been made on the linguistic phenomena analysis, however, little is known about the effects of imbalanced datasets with linguistic phenomenon in recognizing inference in text. The objective of this paper is to provide an empirical study on learning imbalanced datasets of recognizing inference in text with linguistic phenomena for a better understanding of the effects of imbalanced datasets with linguistic phenomenon in recognizing inference in text. In this paper, we proposed an analysis of imbalanced datasets of recognizing inference in text with linguistic phenomena using NTCIR 11 RITE-VAL gold standard dataset and development dataset. The experimental results suggest that the distribution of imbalanced datasets of recognizing inference in text with linguistic phenomenon could be dramatically varied on the performance of a machine learning classifier.
    關聯: Proceedings of the 2015 IEEE 16th International Conf2015), Sanerence on Information Reuse and Integration, pp. 562-568
    DOI: 10.1109/IRI.2015.99
    显示于类别:[資訊管理學系暨研究所] 會議論文

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