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QoS Prediction for Service Recommendation With Features Learning in Mobile Edge Computing Environment

机译:在移动边缘计算环境中使用功能学习的服务推荐QoS预测

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摘要

In recent years, deep neural networks have achieved exciting results in a variety of tasks, and many fields try to introduce neural network techniques. In mobile edge computing, there are not many attempts that build neural network models in service recommendation or QoS (quality-of-service) prediction. The method proposed in this article is an attempt to employ neural network technique for QoS prediction. Compared to the pure use of QoS records, the exploration for context information in QoS prediction also still needs a lot of efforts. But an increasing number of features are highly likely to result in overfitting problem, especially in the case that the data size is small. To solve those problems, in this article, we propose several new techniques, including denoising auto-encoder with fuzzy clustering (DAFC) and recombination embedding network, focusing on how to use context information and how to alleviate overfitting problem. DAFC uses the denoising auto-encoder, which helps the fuzzy clustering algorithm overcome the defect that the performance is easy to be impacted by the number of clusters. Extensive experiments under different data densities show that these two network structures indeed improve the performance and reduce the overfitting problem.
机译:近年来,深度神经网络在各种任务中取得了令人兴奋的结果,许多领域试图引入神经网络技术。在移动边缘计算中,没有许多尝试在服务推荐或QoS中建立神经网络模型(服务质量)预测。本文提出的方法是尝试采用神经网络技术来QOS预测。与QoS记录的纯粹使用相比,QoS预测中的上下文信息的探索也需要很多努力。但是,越来越多的特征很可能导致过度的问题,特别是在数据大小很小的情况下。为了解决这些问题,在本文中,我们提出了几种新技术,包括带有模糊聚类(DAFC)和重组嵌入网络的去噪自动编码器,专注于如何使用上下文信息以及如何缓解过度拟合问题。 DAFC使用Dafoising自动编码器,帮助模糊聚类算法克服了性能易于受群集数量的缺陷。不同数据密度下的广泛实验表明,这两个网络结构确实提高了性能并降低了过度的问题。

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