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Chinese Answer Extraction Based on POS Tree and Genetic Algorithm

  • Beihang University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Answer extraction is the most important part of a chinese web-based question answering system. In order to enhance the robustness and adaptability of answer extraction to new domains and eliminate the influence of the incomplete and noisy search snippets, we propose two new answer exraction methods. We utilize text patterns to generate Part-of-Speech (POS) patterns. In addition, a method is proposed to construct a POS tree by using these POS patterns. The POS tree is useful to candidate answer extraction of web-based question answering. To retrieve a efficient POS tree, the similarities between questions are used to select the question-answer pairs whose questions are similar to the unanswered question. Then, the POS tree is improved based on these question-answer pairs. In order to rank these candidate answers, the weights of the leaf nodes of the POS tree are calculated using a heuristic method. Moreover, the Genetic Algorithm (GA) is used to train the weights. The experimental results of 10-fold cross-validation show that the weighted POS tree trained by GA can improve the accuracy of answer extraction.

源语言英语
主期刊名SIGHAN 2017 - 9th SIGHAN Workshop on Chinese Language Processing, Proceedings of the SIGHAN-9 Workshop
出版商Association for Computational Linguistics (ACL)
30-36
页数7
ISBN(电子版)9781948087094
出版状态已出版 - 2017
活动9th SIGHAN Workshop on Chinese Language Processing, SIGHAN 2017 at IJCNLP 2017 - Taipei, 中国台湾
期限: 1 12月 2017 → …

出版系列

姓名SIGHAN 2017 - 9th SIGHAN Workshop on Chinese Language Processing, Proceedings of the SIGHAN-9 Workshop

会议

会议9th SIGHAN Workshop on Chinese Language Processing, SIGHAN 2017 at IJCNLP 2017
国家/地区中国台湾
Taipei
时期1/12/17 → …

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