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Reputation Revision Method for Selecting Cloud Services Based on Prior Knowledge and a Market Mechanism

机译:基于先验知识和市场机制的云服务选择信誉修订方法

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摘要

The trust levels of cloud services should be evaluated to ensure their reliability. The effectiveness of these evaluations has major effects on user satisfaction, which is increasingly important. However, it is difficult to provide objective evaluations in open and dynamic environments because of the possibilities of malicious evaluations, individual preferences, and intentional praise. In this study, we propose a novel unfair rating filtering method for a reputation revision system. This method uses prior knowledge as the basis of similarity when calculating the average rating, which facilitates the recognition and filtering of unfair ratings. In addition, the overall performance is increased by a market mechanism that allows users and service providers to adjust their choice of services and service configuration in a timely manner. The experimental results showed that this method filtered unfair ratings in an effective manner, which greatly improved the precision of the reputation revision system.
机译:应该评估云服务的信任级别,以确保其可靠性。这些评估的有效性对用户满意度产生重大影响,这一点变得越来越重要。但是,由于存在恶意评估,个人喜好和故意表扬的可能性,因此很难在开放和动态的环境中提供客观评估。在这项研究中,我们提出了一种新颖的不诚实评级过滤方法,用于声誉修订系统。该方法在计算平均评分时将先验知识用作相似性的基础,这有助于识别和过滤不公平评分。另外,通过市场机制可以提高整体性能,该机制允许用户和服务提供商及时调整其服务选择和服务配置。实验结果表明,该方法有效过滤了不公平评级,极大地提高了声誉修订系统的准确性。

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