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A Personalized QoS Prediction Method for Web Services via Blockchain-Based Matrix Factorization

机译:基于区块链的矩阵分解的Web服务个性化QoS预测方法

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摘要

Personalized quality of service (QoS) prediction plays an important role in helping users build high-quality service-oriented systems. To obtain accurate prediction results, many approaches have been investigated in recent years. However, these approaches do not fully address untrustworthy QoS values submitted by unreliable users, leading to inaccurate predictions. To address this issue, inspired by blockchain with distributed ledger technology, distributed consensus mechanisms, encryption algorithms, etc., we propose a personalized QoS prediction method for web services that we call blockchain-based matrix factorization (BMF). We develop a user verification approach based on homomorphic hash, and use the Byzantine agreement to remove unreliable users. Then, matrix factorization is employed to improve the accuracy of predictions and we evaluate the proposed BMF on a real-world web services dataset. Experimental results show that the proposed method significantly outperforms existing approaches, making it much more effective than traditional techniques.
机译:个性化服务质量(QoS)预测在帮助用户构建高质量的面向服务的系统中起着重要作用。为了获得准确的预测结果,近年来已经研究了许多方法。但是,这些方法不能完全解决由不可靠用户提交的不可信QoS值的问题,从而导致预测不准确。为了解决这个问题,受分布式账本技术,分布式共识机制,加密算法等启发,我们提出了一种针对Web服务的个性化QoS预测方法,我们将其称为基于区块链的矩阵分解(BMF)。我们开发了一种基于同态哈希的用户验证方法,并使用拜占庭协议来删除不可靠的用户。然后,采用矩阵分解来提高预测的准确性,我们在真实的Web服务数据集上评估提出的BMF。实验结果表明,提出的方法明显优于现有方法,比传统方法更有效。

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