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Services Recommended Trust Algorithm Based on Cloud Model Attributes Weighted Clustering

机译:云模型属性加权聚类的服务推荐信任算法

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摘要

There are many different cloud services available, each with different offerings and standards of quality. Choosing a credible and reliable service has become a key issue. To address the shortcomings of existing evaluation methods, we propose a service clustering method based on weighted cloud model attributes. We calculate user-rating similarity with the weighted Pearson correlation coefficient method based on service clustering, and then compute user similarity combined with the user service selection index weight. This method allows us to determine the nearest neighbors. Finally, we obtain the recommended trust of the service for the target user through the recommendation trust algorithm. Simulation results show that the proposed algorithm can more accurately calculate service recommended trust. This method meets the demand of users in terms of service trust, and it improves the success rate of user service selection.
机译:有许多不同的云服务可用,每种都有不同的产品和质量标准。选择可靠和可靠的服务已成为关键问题。针对现有评估方法的不足,提出了一种基于加权云模型属性的服务聚类方法。我们基于服务聚类,采用加权Pearson相关系数法计算用户评分相似度,然后结合用户服务选择指数权重计算用户相似度。这种方法使我们能够确定最近的邻居。最后,我们通过推荐信任算法获得目标用户对服务的推荐信任。仿真结果表明,该算法可以更准确地计算服务推荐信任度。该方法在服务信任方面满足了用户的需求,提高了用户服务选择的成功率。

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