Ray Tracing Techniques for the Characterization of Lunar Communication Architectures

Thomas Montano, George Bussey
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Abstract

This paper provides an overview of the computational techniques used to characterize the viability of different lunar architectures and their ability to provide communication services to the Lunar surface. This analysis was done with ray-tracing techniques that allow for computations on Graphics Processing Unit (GPU) clusters for a high level of parallelism and severe reduction in computation time. The ray-tracing computations were done with the GPU platform Compute Unified Device Architecture (CUDA) provided by NVIDIA, which utilizes General-Purpose computing on Graphics Processing Units (GPGPU). This new method offers the advantage of being able to characterize a significantly larger portion of the Lunar surface due to its computational efficiency and providing a more accurate representation of communication limits instead of the typical and often inaccurate elevation angle mask. The Lunar surface can now be characterized by contact time, outage time, and distance metrics. With these metrics, different proposed Lunar architectures can be evaluated. This reduction in computation time leads to more accurate results and allows these results to be obtained in a time frame that allows for the complete characterization of the trade space. It is then shown that the architecture that provides the highest overall performance will be the dual twelve-hour pathfinder configuration. In addition, this computation method can recreate network parameter figures generated by previous methods but with an increased level of accuracy.
月球通信架构表征的光线追踪技术
本文概述了用于描述不同月球架构的可行性及其向月球表面提供通信服务的能力的计算技术。该分析是通过光线跟踪技术完成的,该技术允许在图形处理单元(GPU)集群上进行计算,以实现高水平的并行性并大大减少计算时间。光线追踪计算使用NVIDIA提供的GPU平台计算统一设备架构(CUDA)完成,该平台利用图形处理单元(GPGPU)的通用计算。这种新方法的优势在于,由于其计算效率,它能够描述更大一部分月球表面的特征,并提供更准确的通信限制表示,而不是典型的、经常不准确的仰角掩模。月球表面现在可以通过接触时间、中断时间和距离度量来表征。有了这些指标,就可以评估不同的月球架构。计算时间的减少导致更准确的结果,并允许在允许完整表征贸易空间的时间框架内获得这些结果。然后显示,提供最高整体性能的架构将是双12小时探路者配置。此外,该计算方法可以重建以前方法生成的网络参数图,但精度提高了。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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