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Web service quality of service prediction via regional reputation-basedmatrix factorization

机译:通过基于区域信誉的矩阵分解的Web服务预测服务质量

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Quality of Service (QoS) of Web services plays an essential role in selecting Web services by consumers. The dynamic QoS attributes of Web services have different values for different users. Therefore, the value of many Web services' QoS features for many users are undetermined, and these values should be predicted. The collaborative filtering (CF) method is one of the most successful approaches to predict these values. CF-based methods use the QoS values contributed by the other users for prediction and, consequently, the values contributed by unreliable users can decrease the accuracy of prediction. To utilize the reputation of users can be regarded as one of the conventional approaches to overcome this problem. In this paper, we have defined a concept called regional reputation that represents the reputation of a user for users in each geographical region. Regional reputation has been achieved with the combination of the location information of the users and their reputation. Subsequently, by combining this concept with the matrix factorization, we have proposed a prediction method called regional reputation-based matrix factorization. This approach has been able to improve the accuracy of prediction and be more persistent to the data contributed by unreliable users.
机译:Web服务的服务质量(QoS)在选择消费者选择Web服务方面发挥着重要作用。 Web服务的动态QoS属性对不同用户具有不同的值。因此,许多用户对许多用户的QoS功能的值未确定,并且应该预测这些值。协作过滤(CF)方法是预测这些值的最成功的方法之一。基于CF的方法使用其他用户贡献的QoS值进行预测,因此,由不可靠的用户贡献的值可以降低预测的准确性。利用用户的声誉可以被视为克服这个问题的传统方法之一。在本文中,我们已经确定了一个名为区域声誉的概念,该概念代表了用户在每个地理区域中用户的声誉。通过用户的位置信息和他们的声誉的结合实现了区域声誉。随后,通过将该概念与矩阵分解结合,我们提出了一种称为基于区域信誉的矩阵分子的预测方法。这种方法能够提高预测的准确性,并更持久地持久地由不可靠用户提供的数据。

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