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Progressive and Approximate Techniques in Ray-Tracing-Based Radio Wave Propagation Prediction Models

机译:基于射线追踪的无线电波传播预测模型中的渐进和近似技术

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Progressive and approximate techniques are proposed here for ray-tracing systems used to predict radio propagation. In a progressive prediction system, intermediate prediction results are fed back to users continuously. As more raypaths are processed, the accuracy of prediction results improves proves progressively. We consider how to construct a progressive system that satisfies the requirements of continuous observability and controllability as well as faithfulness and fairness. Adding a workload estimator to such a progressive prediction system allows termination of the computation when a desired accuracy (mean and standard deviation of the error) is achieved without knowing the final result that would be obtained if the prediction system runs to completion. The sample generator is at the core of the progressive prediction system and serves to cluster and prioritize raypaths according to their expected contributions to prediction results. Two types of progressive approaches, source-group-raypath-permute and raypath-interleave, are proposed. The workload estimator determines the number of raypaths to be processed to achieve the specified requirement on prediction accuracy. Two approximate models are described that adjust the workload dynamically during the prediction process. Our experiments show that the proposed progressive and approximate methods provide flexible mechanisms to trade prediction accuracy for prediction time in a relatively fine granularity.
机译:此处针对用于预测无线电传播的光线跟踪系统提出了渐进和近似技术。在渐进式预测系统中,中间预测结果会不断反馈给用户。随着更多的光线路径被处理,预测结果的准确性逐渐提高。我们考虑如何构建一个满足持续可观察性和可控性以及忠实性和公平性要求的渐进系统。将工作量估计器添加到这样的渐进式预测系统中,可以在达到所需的精度(误差的均值和标准偏差)时终止计算,而无需知道如果预测系统运行完成将获得的最终结果。样本生成器是渐进式预测系统的核心,用于根据光线路径对预测结果的预期贡献对光线路径进行聚类和优先排序。提出了两种类型的渐进方法:源组射线路径置换和射线路径交织。工作量估计器确定要处理的光线路径数量,以达到对预测准确性的指定要求。描述了两个近似模型,它们在预测过程中动态调整工作量。我们的实验表明,所提出的渐进和近似方法提供了灵活的机制,可以以相对较细的粒度权衡预测时间的预测精度。

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