用于ACAS X开发的增强并行仿真

A. Gjersvik
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引用次数: 0

摘要

ACAS X是下一代机载防撞系统,旨在满足快速发展的美国国家空域系统(NAS)的需求。通过在快速蒙特卡洛环境中模拟数十亿次典型飞机碰撞,对系统的避碰安全性和操作适用性进行了优化和持续评估。因此,与每个ACAS X设计迭代相关的固有计算成本和模拟的并行化是跟上快速设计周期所必需的。这项工作描述了在林肯实验室超级计算中心提供的计算资源上部署并行计算基础设施的概况和增强工作。提出了快速空域遭遇战仿真工具的大规模并行化方法,并在不同类型的计算节点上收集了相应的并行轮廓数据。此外,还提出了一种简单的分布式仿真随机模型,用于优化工作批处理,从而提高仿真效率。本文最后讨论了这种高性能并行仿真方法如何在快节奏的迭代设计过程中实现ACAS X的快速安全关键设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced Parallel Simulation for ACAS X Development
ACAS X is the next generation airborne collision avoidance system intended to meet the demands of the rapidly evolving U.S. National Airspace System (NAS). The collision avoidance safety and operational suitability of the system are optimized and continuously evaluated by simulating billions of characteristic aircraft encounters in a fast-time Monte Carlo environment. There is therefore an inherent computational cost associated with each ACAS X design iteration and parallelization of the simulations is necessary to keep up with rapid design cycles. This work describes an effort to profile and enhance the parallel computing infrastructure deployed on the computing resources offered by the Lincoln Laboratory Supercomputing Center. The approach to large-scale parallelization of our fast-time airspace encounter simulation tool is presented along with corresponding parallel profile data collected on different kinds of compute nodes. A simple stochastic model for distributed simulation is also presented to inform optimal work batching for improved simulation efficiency. The paper concludes with a discussion on how this high-performance parallel simulation method enables the rapid safety-critical design of ACAS X in a fast-paced iterative design process.
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