A Deep Learning Solution for Multimedia Conference System Assisted by Cloud Computing

Wei Zhang, Huiling Shi, Xinming Lu, Longquan Zhou
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引用次数: 4

Abstract

With the development of information technology, more and more people use multimedia conference system to communicate or work across regions. In this article, an ultra-reliable and low-latency solution based on Deep Learning and assisted by Cloud Computing for multimedia conference system, called UCCMCS, is designed and implemented. In UCCMCS, there are two-tiers in its data distribution structure which combines the advantages of cloud computing. And according to the requirements of ultra-reliability and low-latency, a bandwidth optimization model is proposed to improve the transmission efficiency of multimedia data so as to reduce the delay of the system. In order to improve the reliability of data distribution, the help of cloud computing node is used to carry out the retransmission of lost data. the experimental results show UCCMCS could improve the reliability and reduce the latency of the multimedia data distribution in multimedia conference system.
云计算辅助下的多媒体会议系统深度学习解决方案
随着信息技术的发展,越来越多的人使用多媒体会议系统进行跨地区的交流或工作。本文设计并实现了一种基于深度学习和云计算辅助的多媒体会议系统的超可靠、低延迟解决方案UCCMCS。UCCMCS的数据分布结构分为两层,结合了云计算的优势。并根据超可靠、低时延的要求,提出了一种带宽优化模型,以提高多媒体数据的传输效率,从而降低系统的时延。为了提高数据分发的可靠性,利用云计算节点对丢失的数据进行重传。实验结果表明,UCCMCS可以提高多媒体会议系统中多媒体数据分发的可靠性,降低延迟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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