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Experimental and analytical evalution of embedded link performance with small-scale channel fluctuations.

机译:小规模信道波动对嵌入式链路性能的实验和分析评估。

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We have deployed a first-of-its-kind, urban-scale wireless mesh network which provides Internet access to 1000's of users spanning multiple square kilometers in an underserved area in Houston, TX. However, in this and other urban environments, IEEE 802.11 link performance is both misunderstood and poor-performing due to complex node interactions which are affected by a vast array of factors including topology, channel conditions, modulation rate, packet sizes, and physical layer capture. In this thesis, I draw from 100's of thousands of urban measurements and develop an analytical model to understand the performance of links embedded in the aforementioned complex scenarios. My focus is on two fundamental concepts involving embedded links. First, choosing the modulation rate which maximizes the throughput is imperative since each bit of the (overly-)shared medium is critical. Yet, all existing rate adaptation mechanisrns fail to track the ideal rate even in a simple, non-mobile urban scenario. Using a custom cross-layer framework, I implement multiple and previously un-implemented rate adaptation mechanisms to reveal the reasons for the failure and design rate adaptation mechanisms which are able to track urban and downtown vehicular and non-mobile environments. Second, I pose a basic, yet unsolved problem: given a time-varying channel and traffic matrix in the aforementioned complex scenario, predict the throughput of an embedded link and understand the complex interactions of factors that lead to its performance. By performing thousands of measurements of embedded links on an urban mesh network and developing an analytical model, this work is the first to show that even a 1 dB change in channel state can yield a bi-modal shift in throughput that emulates a change in node connectivity. Finally, I apply our model and experimentation to modulation rate selection and the interaction of control and data traffic to show that understanding these complex interdependencies leads to operation in improved performance regimes. My work has implications for this and other urban communities which have unequal access to Internet resources, enabling a high-speed access infrastructure at extremely low cost.
机译:我们已经部署了首个城市规模的无线网状网络,该网络可为德克萨斯州休斯敦欠缺服务区域的数千平方千米范围内的用户提供互联网访问。但是,在这种以及其他城市环境中,由于复杂的节点交互(受拓扑,信道条件,调制速率,数据包大小和物理层捕获等多种因素影响),IEEE 802.11链路性能既被误解又表现不佳。 。在本文中,我从数十万个城市测量中的100个中提取并开发了一个分析模型,以了解嵌入在上述复杂场景中的链接的性能。我的重点是涉及嵌入式链接的两个基本概念。首先,必须选择使吞吐量最大化的调制速率,因为(过度)共享媒体的每一位都是至关重要的。然而,即使在简单,非机动的城市场景中,所有现有的费率调整机制也无法追踪理想费率。通过使用自定义的跨层框架,我实现了多个以前未实现的速率自适应机制,以揭示故障原因并设计了速率自适应机制,这些机制可以跟踪市区和市区的车辆和非移动环境。其次,我提出了一个基本但尚未解决的问题:在上述复杂情况下,给定随时间变化的信道和流量矩阵,预测嵌入式链接的吞吐量并了解导致其性能的因素之间的复杂相互作用。通过对城市网状网络上的嵌入式链路进行数千次测量并开发分析模型,这项工作首次表明,即使信道状态发生1 dB的变化,也会产生吞吐量的双峰变化,从而模拟节点的变化连接性。最后,我将我们的模型和实验应用于调制速率选择以及控制和数据流量之间的交互作用,以表明了解这些复杂的相互依存关系可以改善性能体系。我的工作对无法平等访问Internet资源的这个城市社区和其他城市社区产生了影响,从而以极低的成本实现了高速访问基础架构。

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