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Consensus-Based Service Selection Using Crowdsourcing Under Fuzzy Preferences of Users

机译:基于用户的众包在用户的模糊偏好下的共识的服务选择

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Different evaluator entities, either human agents (e.g., experts) or software agents (e.g., monitoring services), are involved in the assessment of QoS parameters of candidate services, which leads to diversity in service assessments. This diversity makes the service selection a challenging task, especially when numerous qualities of service criteria and range of providers are considered. To address this problem, this study first presents a consensus-based service assessment methodology that utilizes consensus theory to evaluate the service behavior for single QoS criteria using the power of crowdsourcing. To this end, trust level metrics are introduced to measure the strength of a consensus based on the trustworthiness levels of crowd members. The peers converged to the most trustworthy evaluation. Next, the fuzzy inference engine was used to aggregate each obtained assessed QoS value based on user preferences because we address multiple QoS criteria in real life scenarios. The proposed approach was tested and illustrated via two case studies that prove its applicability.
机译:不同的评估实体,人类代理人(例如,专家)或软件代理人(例如,监测服务)参与评估候选服务QoS参数,这导致服务评估的多样性。这种多样性使得服务选择成为一个具有挑战性的任务,特别是当考虑许多服务标准和提供者范围的品质时。为了解决这个问题,本研究首先提出了一种基于共识的服务评估方法,该方法利用共识理论来评估单一QoS标准的服务行为,使用众包的力量。为此,引入了信任级别指标,以根据人群成员的可信度水平来衡量共识的强度。同行融合到最值得信赖的评估。接下来,使用模糊推理引擎基于用户偏好来聚合每个获得的评估QoS值,因为我们在现实生活方案中解决了多个QoS标准。通过两种案例研究来测试和说明所提出的方法,证明其适用性。

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