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Radio-wave propagation prediction using ray-tracing techniques on a network of workstations (NOW)

机译:在工作站网络上使用射线跟踪技术进行无线电波传播预测(现在)

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Ray-tracing based radio wave propagation prediction models play an important role in the design of contemporary wireless networks as they may now take into account diverse physical phenomena including reflections, diffractions, and diffuse scattering. However, such models are computationally expensive even for moderately complex geographic environments. In this paper, we propose a computational framework that functions on a network of workstations (NOW) and helps speed up the lengthy prediction process. In ray-tracing based radio propagation prediction models, orders of diffractions are usually processed in a stage-by-stage fashion. In addition, various source points (transmitters. diffraction corners, or diffuse scattering points) and different ray-paths require different processing times. To address these widely varying needs, we propose a combination of the phase-parallel and manager/workers paradigms as the underpinning framework. The phase-parallel component is used to coordinate different computation stages, while the manager/workers paradigm is used to balance workloads among nodes within each stage. The original computation is partitioned into multiple small tasks based on either raypath-level or source-point-level granularity. Dynamic load-balancing scheduling schemes are employed to allocate the resulting tasks to the workers.We also address issues regarding main memory consumption, intermediate data assembly, and final prediction generation. We implement our proposed computational model on a NOW configuration by using the message passing interface (MPI) standard. Our experiments with real and synthetic building and terrain databases show that, when no constraint is imposed on the main memory consumption, the proposed prediction model performs very well and achieves nearly linear speedups under various workload. When main memory consumption is a concern, our model still delivers very promising performance rates provided that the complexity of the involved computation is high, so that the extra computation and communication overhead introduced by the proposed model do not dominate the original computation. The accuracy of prediction results and the achievable speedup rates can be significantly improved when 3D building and terrain databases are used and/or diffuse scattering effect is taken into account. (C) 2004 Elsevier Inc. All rights reserved.
机译:基于射线追踪的无线电波传播预测模型在当代无线网络的设计中起着重要作用,因为它们现在可能考虑到各种物理现象,包括反射,衍射和漫散射。但是,即使对于中等复杂的地理环境,此类模型在计算上也很昂贵。在本文中,我们提出了一个可在工作站网络(NOW)上运行的计算框架,并有助于加快冗长的预测过程。在基于射线跟踪的无线电传播预测模型中,通常以逐步的方式处理衍射级。另外,各种源点(透射器,衍射角或漫散射点)和不同的射线路径需要不同的处理时间。为了满足这些千差万别的需求,我们提出了阶段并行和经理/工人范式的组合作为基础框架。阶段并行组件用于协调不同的计算阶段,而经理/工作人员范式用于平衡每个阶段内节点之间的工作量。原始计算根据射线路径级别或源点级别的粒度划分为多个小任务。动态负载平衡调度方案用于将结果任务分配给工作人员。我们还解决了有关主内存消耗,中间数据组装和最终预测生成的问题。我们使用消息传递接口(MPI)标准在NOW配置上实现我们提出的计算模型。我们对真实和合成的建筑物和地形数据库进行的实验表明,在不对主内存消耗施加任何约束的情况下,所提出的预测模型在各种工作负载下的性能都非常好,并且实现了近乎线性的加速。当需要考虑主内存消耗时,只要所涉及的计算的复杂性很高,我们的模型仍然可以提供非常有希望的性能,因此建议的模型引入的额外计算和通信开销不会控制原始计算。当使用3D建筑和地形数据库和/或考虑漫散射效果时,可以显着提高预测结果的准确性和可达到的加速率。 (C)2004 Elsevier Inc.保留所有权利。

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