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Optimization Decomposition for Scheduling and System Configuration in Wireless Networks

机译:无线网络中的调度和系统配置的优化分解

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Who gets to use radio spectrum, and when, where, and how? Scheduling (who, where, when) and system configuration (how) are fundamental problems in radio communication and wireless networking. Optimization decomposition based on Lagrangian relaxation of signal quality requirements provides a mathematical framework for solving this type of combined problem. This paper demonstrates the technique as a solution to spatial reuse time-division multiple access (STDMA) scheduling with reconfigurable antennas. The joint beam steering and scheduling (JBSS) problem offers both a challenging mathematical structure and significant practical value. We present algorithms for JBSS and describe an implemented system based on these algorithms. We achieve up to 600% of the throughput of TDMA with a mean of 234% in our experiments. The decomposition approach leads to a working distributed protocol producing optimal solutions in an amount of time that is at worst linear in the size of the input. This is, to the best of our knowledge, the first actually implemented wireless scheduling system based on dual decomposition. We identify and briefly address some of the challenges that arise in taking such a system from theory to reality.
机译:谁可以使用无线电频谱,何时,何地以及如何使用?调度(谁,何时何地)和系统配置(如何)是无线电通信和无线网络中的基本问题。基于拉格朗日信号质量要求松弛的优化分解为解决此类组合问题提供了数学框架。本文演示了该技术,作为可重配置天线的空间复用时分多址(STDMA)调度的解决方案。联合波束控制和调度(JBSS)问题既具有挑战性的数学结构,又具有重要的实用价值。我们提出了JBSS的算法,并描述了基于这些算法的实现系统。在我们的实验中,我们达到了TDMA吞吐量的600%,平均为234%。分解方法导致工作的分布式协议在最坏的情况下在输入大小上呈线性的时间内产生最佳解决方案。据我们所知,这是第一个实际实现的基于双重分解的无线调度系统。我们确定并简要解决了将这种系统从理论变为现实时所遇到的一些挑战。

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