Empirical Research on E-Government Based on Content Mining

Yang Shen, Zitao Liu, Shaoji Luo, Huijuan Fu, Ye Li
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引用次数: 4

Abstract

According to acquiring data from the meta-search engine and getting information in specific websites, the author proposes an extraction model based on Web information which is used to construct network relationships of the subject based on its semantic link. Then based on the proposed model above, the author does content mining and semantic analysis on the Web data of five big cities (Beijing, Shanghai, Wuhan, Guangzhou, and Chengdu) with the help of self-made ROST Content Mining System, to get first 30 high-frequency e-government words respectively, and takes Shanghai for specific analysis; Meanwhile, the author, using ROST WebSpider to collect the web page from level 1 to 3 of governments’ websites in Beijing, Shanghai, Wuhan, Guangzhou and Chengdu, constructs the evaluation model SCISS to do comparative analysis on the development of the five metropolis’ e-government. Finally, the author comes up with some countermeasures, aiming to provide advice for the development of e-government in china, according to the empirical analysis.
基于内容挖掘的电子政务实证研究
根据从元搜索引擎获取数据和从特定网站获取信息的特点,作者提出了一种基于Web信息的抽取模型,该模型基于主题的语义链接来构建主题的网络关系。然后基于上述提出的模型,借助自制的ROST内容挖掘系统,对北京、上海、武汉、广州、成都五个大城市的Web数据进行内容挖掘和语义分析,分别得到前30个电子政务高频词,并以上海为具体分析;同时,利用ROST WebSpider对北京、上海、武汉、广州、成都5个城市政府网站的1 - 3级网页进行收集,构建评价模型SCISS,对5个城市的电子政务发展进行比较分析。最后,根据实证分析,笔者提出了相应的对策,旨在为中国电子政务的发展提供建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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