Throughput optimization for multipath unicast routing under probabilistic jamming

P. Tague, S. Nabar, J. Ritcey, D. Slater, R. Poovendran
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引用次数: 14

Abstract

We present a framework for throughput optimization for multipath unicast routing in wireless networks in the presence of probabilistic jamming. The framework introduces a statistical characterization into the maximum network flow problem to compensate for the reduction in network flow due to the loss of jammed packets. We map the problem of throughput optimization under probabilistic jamming to that of optimal investment portfolio selection, treating the network throughput as the return on financial investments and using a common portfolio selection framework from financial statistics. Based on the portfolio selection framework, we present approaches to maximize expected throughput and to minimize throughput variance. We include both a detailed example and a simulation study to illustrate the application of the throughput optimization framework.
概率干扰下多径单播路由的吞吐量优化
提出了一种概率干扰下无线网络中多径单播路由吞吐量优化的框架。该框架将统计特征引入到最大网络流量问题中,以补偿由于阻塞数据包丢失而导致的网络流量减少。我们将概率干扰下的吞吐量优化问题映射为最优投资组合选择问题,将网络吞吐量视为金融投资的回报,并使用金融统计中的通用投资组合选择框架。基于投资组合选择框架,我们提出了最大化期望吞吐量和最小化吞吐量方差的方法。我们包括一个详细的示例和一个模拟研究来说明吞吐量优化框架的应用。
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