Reliability Prediction for Service Oriented System via Matrix Factorization in a Collaborative Way

Yueshen Xu, Jianwei Yin, Zizheng Wu, Dongqing He, Yan Tan
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引用次数: 7

Abstract

The reliability prediction of service-oriented system is a key problem, and has become increasingly important along with the wide utilization of service-oriented architecture. In this paper, we aim to improve the prediction accuracy of reliability in a collaborative way. First, we estimate the failure probability of each component through two independent models extended from Matrix Factorization. For each service and user, we identify the similar neighbors through similarity computation. Then, we build the service neighborhood-based MF model (SN-MF) and user neighborhood-based MF model (UN-MF). In the two models, each unknown failure probability is learned out assisted by similar neighbors' historical failure records collaboratively. Further, we combine the two models together to build an ensemble model, and explicate the way of calculating the final failure probability of the whole system. Afterwards, the failure probability is mapped to reliability with a classical function. Finally, experiments conducted in a real-world dataset demonstrate the effectiveness of our models.
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基于协同矩阵分解的面向服务系统可靠性预测
面向服务系统的可靠性预测是一个关键问题,随着面向服务体系结构的广泛应用,该问题变得越来越重要。在本文中,我们旨在通过协作的方式来提高可靠性的预测精度。首先,我们通过矩阵分解的两个独立模型来估计每个部件的失效概率。对于每个服务和用户,我们通过相似度计算来识别相似邻居。在此基础上,分别构建了基于服务邻域的MF模型(SN-MF)和基于用户邻域的MF模型(UN-MF)。在这两种模型中,每个未知的故障概率都是在相似邻居的历史故障记录的辅助下协同学习出来的。在此基础上,将两种模型结合起来,建立了一个集成模型,并阐述了整个系统最终失效概率的计算方法。然后用经典函数将失效概率映射为可靠度。最后,在真实数据集中进行的实验证明了我们模型的有效性。
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