蜂窝网络的跨层拥塞控制

Feng Lu, Hao Du, Ankur Jain, G. Voelker, A. Snoeren, A. Terzis
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引用次数: 90

摘要

随着高速蜂窝接入的出现和智能手机的压倒性普及,今天大部分的互联网内容都是通过蜂窝链路传输的。由于远程无线信号传播的性质,最后一跳蜂窝链路的容量可以在短时间内(例如,几秒钟)以数量级变化。不幸的是,TCP在这种快速变化的环境中表现不佳,可能导致频谱利用率低和端到端数据包延迟高。在本文中,我们回顾了4G蜂窝网络背景下跨层优化的开创性工作。具体而言,我们利用基站(NodeB)和移动电话(UE)之间交换的丰富物理层信息来预测底层蜂窝链路的容量,并提出nCQIC,一种跨层拥塞控制设计。在实际蜂窝网络上的实验验证了该方法的准确性和精确性。CQIC发送方使用这些容量估计来调整其数据包发送行为。我们的初步评估表明,对于中小型流量,CQIC比TCP提高了1.08-2.89倍的吞吐量。对于大流量,CQIC实现了与TCP相当的吞吐量,同时将平均RTT降低了2.38-2.65倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CQIC: Revisiting Cross-Layer Congestion Control for Cellular Networks
With the advent of high-speed cellular access and the overwhelming popularity of smartphones, a large percent of today's Internet content is being delivered via cellular links. Due to the nature of long-range wireless signal propagation, the capacity of the last hop cellular link can vary by orders of magnitude within a short period of time (e.g., a few seconds). Unfortunately, TCP does not perform well in such fast-changing environments, potentially leading to poor spectrum utilization and high end-to-end packet delay. In this paper we revisit seminal work in cross-layer optimization in the context of 4G cellular networks. Specifically, we leverage the rich physical layer information exchanged between base stations (NodeB) and mobile phones (UE) to predict the capacity of the underlying cellular link, and propose nCQIC, a cross-layer congestion control design. Experiments on real cellular networks confirm that our capacity estimation method is both accurate and precise. A CQIC sender uses these capacity estimates to adjust its packet sending behavior. Our preliminary evaluation reveals that CQIC improves throughput over TCP by 1.08-2.89x for small and medium flows. For large flows, CQIC attains throughput comparable to TCP while reducing the average RTT by 2.38-2.65x.
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