Time-Based QoS Prediction and Rank Aggregation of Web Services

V. Mareeswari, E. Sathiyamoorthy
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Abstract

Everyday activities are equipped with smart intellectual possessions in the modern Internet domain for which a wide range of web services are deployed in business, health-care systems, and environmental solutions. Entire services are accessed through web applications or hand-held computing devices. The recommender system is more prevalent in commercial applications. This research predicts the preference of consumers and lists the recommended services in order of ranking for consumers to choose services in a short time span. This proposed approach aims to offer the exact prediction of missing QoS (quality of service) value of web services at a specified time slice. The uncertainty of QoS value has been predicted using the cloud model theory. The focus is to give the global ranking using the aggregated ranking of the consumer's ranking list, which has been obtained through the Kemeny optimal aggregation algorithm. In this work, multidimensional QoS data of web services have experimented and given an accurate prediction and ranking in the web environment.
基于时间的Web服务QoS预测与排名聚合
在现代互联网领域中,日常活动配备了智能知识财产,在商业、医疗保健系统和环境解决方案中部署了广泛的web服务。整个服务都是通过web应用程序或手持计算设备访问的。推荐系统在商业应用中更为普遍。本研究预测消费者的偏好,并将推荐的服务按排名的顺序列出,以便消费者在短时间内选择服务。该方法旨在准确预测web服务在指定时间片上缺失的QoS(服务质量)值。利用云模型理论对QoS值的不确定性进行了预测。重点是利用Kemeny最优聚合算法得到的消费者排名表的综合排名给出全球排名。本文对web服务的多维QoS数据进行了实验,并在web环境下给出了准确的预测和排序。
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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