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An empirical study based on a fuzzy logic system to assess the QoS/QoE correlation for layered video streaming

机译:基于模糊逻辑系统评估分层视频流QoS / QoE相关性的实证研究

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摘要

A model that can predict an end user satisfaction or QoE (Quality of Experience) directly from the network QoS (Quality of Service) is still illusive in the field of image processing and is completely absent in multi-layered video. This motivates the derivation of a meaningful QoS to QoE mapping function to allow one to be predicted in the absence of the other. This paper presents an affine fuzzy logic based system that can map the QoS to QoE and can be extended to layered video streaming. The proposed methodology employs a learning system which optimizes the coded layered video for best QoE. Four QoS parameters are chosen as the inputs of the designed model, while the output is the Peak Signal-to-Noise Ratio (PSNR). The designed membership functions and the fuzzy rules extracted from the input and the output enable the proposed model to identify and learn the video QoE.
机译:可以预测最终用户满意度或QoE(经验质量)的模型直接从网络QoS(服务质量)在图像处理领域仍然虚幻,并且在多层视频中完全不存在。这激励了一个有意义的QoS到QoE映射函数的推导,以便在没有对方的情况下预测一个。本文介绍了一个基于仿射模糊逻辑的系统,可以将QoS映射到QoE,并且可以扩展到分层视频流。该提出的方法采用了一个学习系统,该系统优化了编码的分层视频以获得最佳QoE。选择四个QoS参数作为设计模型的输入,而输出是峰值信噪比(PSNR)。从输入中提取的设计成员函数和模糊规则和输出使提出的模型能够识别和学习视频QoE。

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