众包移动视频流的性能边界分析

Lin Gao, M. Tang, Haitian Pang, Jianwei Huang, Lifeng Sun
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引用次数: 11

摘要

自适应比特率(ABR)流使视频用户能够根据实时网络条件调整播放比特率,以达到理想的体验质量(QoE)。在这项工作中,我们提出了一个新颖的众包流媒体框架,用于无线网络上的多用户ABR视频流。该框架使附近的移动视频用户能够将他们的无线电链路和资源众包,以进行合作视频流。我们重点分析了所提出的众包流媒体系统的社会福利绩效边界。由于用户的异步操作,直接解决这个边界是具有挑战性的。为此,我们引入了一个具有同步操作的虚拟时隙系统,并将相关的社会福利优化问题表述为线性规划。研究表明,虚拟系统的最优社会福利性能为原异步系统的最优性能(界)提供了有效的上界和下界,从而表征了所提众包流系统的可行性能区域。所得的性能边界可以作为未来在线算法设计和激励机制设计的基准。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance bound analysis for crowdsourced mobile video streaming
Adaptive bitrate (ABR) streaming enables video users to adapt the playing bitrate to the real-time network conditions to achieve the desirable quality of experience (QoE). In this work, we propose a novel crowdsourced streaming framework for multi-user ABR video streaming over wireless networks. This framework enables the nearby mobile video users to crowdsource their radio links and resources for cooperative video streaming. We focus on analyzing the social welfare performance bound of the proposed crowdsourced streaming system. Directly solving this bound is challenging due to the asynchronous operations of users. To this end, we introduce a virtual time-slotted system with the synchronized operations, and formulate the associated social welfare optimization problem as a linear programming. We show that the optimal social welfare performance of the virtual system provides effective upper-bound and lower-bound for the optimal performance (bound) of the original asynchronous system, hence characterizes the feasible performance region of the proposed crowdsourced streaming system. The performance bounds derived in this work can serve as a benchmark for the future online algorithm design and incentive mechanism design.
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