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A Highly Accurate Prediction Algorithm for Unknown Web Service QoS Values

机译:未知Web服务QoS值的高精度预测算法

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Quality of service (QoS) guarantee is an important component of service recommendation. Generally, some QoS values of a service are unknown to its users who has never invoked it before, and therefore the accurate prediction of unknown QoS values is significant for the successful deployment of web service-based applications. Collaborative filtering is an important method for predicting missing values, and has thus been widely adopted in the prediction of unknown QoS values. However, collaborative filtering originated from the processing of subjective data, such as movie scores. The QoS data of web services are usually objective, meaning that existing collaborative filtering-based approaches are not always applicable for unknown QoS values. Based on real world web service QoS data and a number of experiments, in this paper, we determine some important characteristics of objective QoS datasets that have never been found before. We propose a prediction algorithm to realize these characteristics, allowing the unknown QoS values to be predicted accurately. Experimental results show that the proposed algorithm predicts unknown web service QoS values more accurately than other existing approaches.
机译:服务质量(QoS)保证是服务推荐的重要组成部分。通常,服务的某些QoS值对于以前从未调用过它的用户是未知的,因此,准确预测未知QoS值对于成功部署基于Web服务的应用程序很重要。协同过滤是预测丢失值的重要方法,因此在未知QoS值的预测中已被广泛采用。但是,协作过滤源自主观数据(例如电影乐谱)的处理。 Web服务的QoS数据通常是客观的,这意味着现有的基于协作过滤的方法并不总是适用于未知的QoS值。基于真实世界的Web服务QoS数据和大量实验,本文确定了以前从未发现过的客观QoS数据集的一些重要特征。我们提出了一种预测算法来实现这些特征,从而可以准确预测未知QoS值。实验结果表明,与其他现有方法相比,该算法能够更准确地预测未知Web服务的QoS值。

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