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Clustering-based uncertain QoS prediction of web services via collaborative filtering

机译:通过协同过滤基于聚类的Web服务不确定QoS预测

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摘要

Although collaborative filtering (CF) has been widely applied for QoS-aware web service recommendation, most of these approaches mainly focus on certain QoS prediction. However, they failed to take the natural characteristic of web services with QoS uncertainty into account in service-oriented web applications. To solve the problem, this paper proposes a novel approach for uncertain QoS prediction via collaborative filtering and service clustering. We first establish uncertain QoS model for a service user, where each service is formalised as a QoS matrix. To mine the similar neighbourhood users for an active user, we then extend the Euclidean distance to calculate the similarity between two uncertain QoS models. Finally, we present two kinds of QoS prediction strategies based on collaborative filtering and clustering, called U-Rec and UC-Rec. Extensive experiments have been carried on 1.5 million real-world uncertain QoS transaction logs of web services. The experimental results validate the effectiveness of our proposed approach.
机译:尽管协作过滤(CF)已广泛应用于QoS感知的Web服务推荐,但是这些方法中的大多数主要集中于某些QoS预测。但是,他们未能在面向服务的Web应用程序中考虑QoS不确定性的Web服务的自然特性。为了解决该问题,本文提出了一种通过协同过滤和服务聚类的不确定性QoS预测的新方法。我们首先为服务用户建立不确定的QoS模型,其中每个服务被形式化为QoS矩阵。为了为活跃用户挖掘相似的邻域用户,然后我们扩展欧几里得距离以计算两个不确定的QoS模型之间的相似度。最后,我们提出了两种基于协同过滤和聚类的QoS预测策略,分别称为U-Rec和UC-Rec。已经对150万个Web服务的现实世界中不确定的QoS事务日志进行了广泛的实验。实验结果验证了我们提出的方法的有效性。

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