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首页> 外文期刊>Journal of the American Society for Information Science and Technology >Evaluating the Information Quality of Web Sites: A Methodology Based on Fuzzy Computing With Words
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Evaluating the Information Quality of Web Sites: A Methodology Based on Fuzzy Computing With Words

机译:网站信息质量评估:一种基于词模糊计算的方法

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摘要

An evaluation methodology based on fuzzy computing with words aimed at measuring the information quality of Web sites containing documents is presented. This methodology is qualitative and user oriented because it generates linguistic recommendations on the information quality of the content-based Web sites based on users' perceptions. It is composed of two main components, an evaluation scheme to analyze the information quality of Web sites and a measurement method to generate the linguistic recommendations. The evaluation scheme is based on both technical criteria related to the Web site structure and criteria related to the content of information on the Web sites. It is user driven because the chosen criteria are easily understandable by the users, in such a way that Web visitors can assess them by means of linguistic evaluation judgments. The measurement method is user centered because it generates linguistic recommendations of the Web sites based on the visitors' linguistic evaluation judgments. To combine the linguistic evaluation judgments we introduce two new majority guided linguistic aggregation operators, the Majority guided Linguistic Induced Ordered Weighted Averaging (MLIOWA) and weighted MLIOWA operators, which generate the linguistic recommendations according to the majority of the evaluation judgments provided by different visitors. The use of this methodology could improve tasks such as information filtering and evaluation on the World Wide Web.
机译:提出了一种基于模糊计算的评估方法,该方法旨在测量包含文档的网站的信息质量。这种方法是定性的和面向用户的,因为它基于用户的感知生成有关基于内容的网站的信息质量的语言建议。它由两个主要部分组成,一个用于评估网站信息质量的评估方案和一个用于生成语言建议的度量方法。评估方案基于与网站结构有关的技术标准和与网站信息内容有关的标准。它是由用户驱动的,因为用户很容易理解所选的标准,以使Web访问者可以通过语言评估判断来评估它们。该度量方法以用户为中心,因为它根据访问者的语言评估判断生成网站的语言建议。为了结合语言评估判断,我们引入了两个新的多数指导语言聚合算子,即多数指导语言诱导有序加权平均(MLIOWA)和加权MLIOWA算子,它们根据不同访问者提供的大多数评估判断生成语言建议。这种方法的使用可以改善诸如在万维网上进行信息过滤和评估之类的任务。

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