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Optimizing Stored Video Delivery for Wireless Networks: The Value of Knowing the Future

机译:优化无线网络的存储视频交付:了解未来的价值

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This paper considers the design of cross-layer opportunistic transport protocols for stored video over wireless networks with a slow varying (average) capacity. We focus on two key principles: 1) scheduling data transmissions when capacity is high; and 2) exploiting knowledge offuturecapacity variations. The latter is possible when users’ mobility is known or predictable, for example, users riding on public transportation or using navigation systems. We consider the design of cross-layer transmission schedules, which minimize system utilization (and, thus, possibly transmit/receive energy) while avoiding, if at all possible, rebuffering/delays in several scenarios. For the single-user anticipative case where all future capacity variations are known beforehand, we establish the optimal transmission schedule in a generalized piecewise constant thresholding (GPCT) scheme. For the single-user partially anticipative case where only a finite window of future capacity variations is known, we propose an online greedy fixed horizon control (GFHC). An upper bound on the competitive ratio of GFHC and GPCT is established showing how performance loss depends on the window size, receiver playback buffer, and capacity variability. We also consider the multiuser case where one can exploit both future temporal and multiuser diversity. Finally, we investigate the impact of uncertainty in knowledge of future capacity variations, and propose an offline approach as well as an online algorithm to deal with such uncertainty. Our simulations and evaluation based on a measured wireless capacity trace exhibit robust potential gains for our proposed transmission schemes.
机译:本文考虑了慢速(平均)容量的无线网络上存储视频的跨层机会传输协议的设计。我们专注于两个关键原则:1)在容量大时安排数据传输;和2)利用 n <斜体xmlns:mml = “ http://www.w3.org/1998/Math/MathML ” xmlns:xlink = “ http://www.w3.org/1999 / xlink “>未来 适应能力变化。当用户的移动性已知或可预测时(例如,乘坐公共交通工具或使用导航系统的用户),后者是可能的。我们考虑跨层传输调度的设计,该调度可最大程度地减少系统利用率(并因此可能传输/接收能量),同时尽可能避免在某些情况下进行重新缓冲/延迟。对于事先知道所有未来容量变化的单用户预期情况,我们以广义分段恒定阈值(GPCT)方案建立最佳传输计划。对于仅知道未来容量变化的有限窗口的单用户部分预期情况,我们建议使用在线贪婪固定水平控件(GFHC)。确定了GFHC和GPCT竞争比的上限,表明性能损失如何取决于窗口大小,接收器回放缓冲区和容量可变性。我们还考虑了在多用户情况下可以利用未来的时间和多用户多样性的情况。最后,我们研究不确定性对未来容量变化知识的影响,并提出了一种离线方法以及一种在线算法来处理此类不确定性。我们基于测得的无线容量轨迹的仿真和评估显示了我们提出的传输方案的强大潜在增益。

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