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Edge Computing Assisted Adaptive Mobile Video Streaming

机译:边缘计算辅助的自适应移动视频流

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摘要

Nearly all bitrate adaptive video content delivered today is streamed using protocols that run a purely client based adaptation logic. The resulting lack of coordination may lead to suboptimal user experience and resource utilization. As a response, approaches that include the network and servers in the adaptation process are emerging. In this article, we present an optimized solution for network assisted adaptation specifically targeted to mobile streaming in multi-access edge computing (MEC) environments. Due to NP-Hardness of the problem, we have designed a heuristic-based algorithm with minimum need for parameter tuning and having relatively low complexity. We then study the performance of this solution against two popular client-based solutions, namely Buffer-Based Adaptation (BBA) and Rate-Based Adaptation (RBA), as well as to another network assisted solution. Our objective is two fold: First, we want to demonstrate the efficiency of our solution and second to quantify the benefits of network-assisted adaptation over the client-based approaches in mobile edge computing scenarios. The results from our simulations reveal that the network assisted adaptation clearly outperforms the purely client-based DASH heuristics in some of the metrics, not all of them, particularly, in situations when the achievable throughput is moderately high or the link quality of the mobile clients does not differ from each other substantially.
机译:当今交付的几乎所有比特率自适应视频内容都是使用运行纯基于客户端的自适应逻辑的协议进行流传输的。导致缺乏协调可能导致用户体验和资源利用不佳。作为响应,正在出现在适应过程中包括网络和服务器的方法。在本文中,我们提出了一种针对网络辅助自适应的优化解决方案,该解决方案专门针对多访问边缘计算(MEC)环境中的移动流。由于问题的NP-Hardness,我们设计了一种基于启发式的算法,该算法具有最少的参数调整需求,并且具有相对较低的复杂度。然后,我们针对两种流行的基于客户端的解决方案(即基于缓冲区的自适应(BBA)和基于速率的自适应(RBA))以及另一种基于网络的解决方案,研究了该解决方案的性能。我们的目标有两个方面:首先,我们想证明我们解决方案的效率,其次,在移动边缘计算场景中,量化基于网络的自适应方法比基于客户端的方法的收益。我们的仿真结果表明,在某些指标(并非全部指标)中,网络辅助自适应明显优于纯基于客户端的DASH启发式算法,尤其是在可达到的吞吐量适中或移动客户端的链路质量较高的情况下没有实质性的不同。

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