A Web Service Recommendation Approach Based on QoS Prediction Using Fuzzy Clustering

Meng Zhang, Xudong Liu, Richong Zhang, Hailong Sun
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引用次数: 48

Abstract

Web services, as loosely-coupled software systems, are increasingly being published to the web and there are a large number of services with similar functions. Therefore, service users compare the non-functional properties of services, e.g., Quality of Service (QoS), when they make service selection. This paper aims at generating a more comprehensive web service recommendation to users with a novel approach to fulfill more accurate prediction of unknown services' QoS values. We accomplish the QoS prediction by using fuzzy clustering method with calculating the users' similarity. Our approach improves the prediction accuracy and this is confirmed by comparing experiments with other methods. In addition, the quality of web services is considered as a multi-dimensional object, and each dimension is one aspect of the web service's non-functional properties. We also provide an application example to demonstrate how to utilize our approach to rank services by a score function and map multi-dimensional QoS properties into a single dimensional value.
基于模糊聚类的QoS预测Web服务推荐方法
Web服务作为松耦合的软件系统,越来越多地被发布到Web上,并且有大量具有类似功能的服务。因此,业务用户在选择服务时,会比较服务的非功能属性,如服务质量(QoS)。本文旨在通过一种新颖的方法生成更全面的web服务推荐给用户,以实现对未知服务QoS值的更准确的预测。通过计算用户的相似度,采用模糊聚类方法实现QoS预测。我们的方法提高了预测精度,并通过与其他方法的实验对比证实了这一点。此外,web服务的质量被视为多维对象,每个维度都是web服务的非功能属性的一个方面。我们还提供了一个应用程序示例来演示如何利用我们的方法通过分数函数对服务进行排序,并将多维QoS属性映射到单维值。
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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