A first look at cellular network performance during crowded events

M. Shafiq, Lusheng Ji, A. Liu, Jeffrey Pang, Shobha Venkataraman, Jia Wang
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引用次数: 141

Abstract

During crowded events, cellular networks face voice and data traffic volumes that are often orders of magnitude higher than what they face during routine days. Despite the use of portable base stations for temporarily increasing communication capacity and free Wi-Fi access points for offloading Internet traffic from cellular base stations, crowded events still present significant challenges for cellular network operators looking to reduce dropped call events and improve Internet speeds. For effective cellular network design, management, and optimization, it is crucial to understand how cellular network performance degrades during crowded events, what causes this degradation, and how practical mitigation schemes would perform in real-life crowded events. This paper makes a first step towards this end by characterizing the operational performance of a tier-1 cellular network in the United States during two high-profile crowded events in 2012. We illustrate how the changes in population distribution, user behavior, and application workload during crowded events result in significant voice and data performance degradation, including more than two orders of magnitude increase in connection failures. Our findings suggest two mechanisms that can improve performance without resorting to costly infrastructure changes: radio resource allocation tuning and opportunistic connection sharing. Using trace-driven simulations, we show that more aggressive release of radio resources via 1-2 seconds shorter RRC timeouts as compared to routine days helps to achieve better tradeoff between wasted radio resources, energy consumption, and delay during crowded events; and opportunistic connection sharing can reduce connection failures by 95% when employed by a small number of devices in each cell sector.
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首先看看拥挤事件期间蜂窝网络的性能
在拥挤的活动期间,蜂窝网络面临的语音和数据通信量往往比平时高几个数量级。尽管使用便携式基站暂时增加通信容量和免费Wi-Fi接入点从蜂窝基站卸载互联网流量,但拥挤的事件仍然是蜂窝网络运营商寻求减少掉线事件和提高互联网速度的重大挑战。为了有效地设计、管理和优化蜂窝网络,了解蜂窝网络性能在拥挤事件期间如何下降、导致这种下降的原因以及实际缓解方案在现实拥挤事件中的表现是至关重要的。本文通过描述2012年两次引人注目的拥挤事件期间美国一级蜂窝网络的运行性能,向这一目标迈出了第一步。我们说明了在拥挤事件期间,人口分布、用户行为和应用程序工作负载的变化如何导致语音和数据性能显著下降,包括连接故障增加两个数量级以上。我们的研究结果提出了两种可以提高性能的机制,而无需求助于昂贵的基础设施更改:无线电资源分配调整和机会连接共享。使用跟踪驱动的模拟,我们表明,与常规日相比,通过缩短1-2秒的RRC超时,更积极地释放无线电资源有助于在拥挤事件中更好地权衡浪费的无线电资源、能源消耗和延迟;当每个小区扇区中使用少量设备时,机会连接共享可以减少95%的连接失败。
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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