一个学术问答网站的问题识别与分类

B. Ojokoh, Tobore Igbe, A. Araoye, Friday Ameh
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引用次数: 10

摘要

维基、博客、论坛、科学社区和其他社交网络服务等在线社区使个人、文件和数据之间的互动和相互联系达到了新的水平,并成为人们寻求和分享专业知识的场所。在本文中,我们提出了一种系统的问题识别和分类方法。首先利用英语词性标注的语义出现度对问题进行识别,然后根据Naïve贝叶斯分类的最大概率值对问题进行分类。通过对ResearchGate网站抓取的部分网页进行实验验证和评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Question identification and classification on an academic question answering site
Online communities such as wikis, blogs, forums, scientific communities and other social networking services have enabled new levels of interactions and interconnections among individuals, documents and data and have become places for people to seek and share expertise. In this paper, we propose a systematic approach to identification and classification of questions. The questions were first identified using semantic occurrence of Part of Speech (POS) tag in English Language, after which they were classified based on maximum probability value of Naïve Bayes classification. The model was validated and evaluated with experiments on some crawled web pages from ResearchGate.
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