卫星ddn接触计划设计演化方法的初步结果

J. Fraire, P. Madoery, J. Finochietto, G. Leguizamón
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引用次数: 4

摘要

延迟和中断容忍网络(dtn)正在成为扩展互联网边界以接受中断通信的一种有吸引力的解决方案。特别是,如果节点轨迹和方向可以像卫星网络一样预测,路由方案可以利用包含即将到来的通信机会的接触计划的先验知识。然而,这种计划的设计需要同时考虑可用的航天器资源和在空间应用中基本上可以预见的预期流量。在这种情况下,现有的交通感知接触计划(TACP)程序利用了这一特性,但其理论公式的计算复杂性使其无法用于实际卫星应用。因此,我们提出CPD-EA:一种遗传算法,在合理的时间内提供次优但有效且可实施的接触计划。特别是,我们描述了算法策略,并在现实的低地球轨道(LEO)场景中评估了其初步性能,证明了它对规划未来基于dtn的卫星网络的有用性。
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Preliminary results of an evolutionary approach towards Contact Plan design for satellite DTNs
Delay and disruption tolerant networks (DTNs) are becoming an appealing solution for extending Internet boundaries so as to embrace disruptive communications. In particular, if node trajectory and orientation can be predicted as in satellite networks, routing schemes can take advantage of the a-priori knowledge of a contact plan comprising the forthcoming communications opportunities. However, the design of such a plan need to consider both available spacecraft resources and the expected traffic which is largely foreseeable in space applications. In this context, the existing Traffic-Aware Contact Plan (TACP) procedure exploits this properties, but the computation complexity of its theoretical formulation results prohibitive for real satellite applications. As a result, we propose CPD-EA: a genetic algorithm to provide sub-optimal yet efficient and implementable contact plans in reasonable time. In particular, we describe the algorithm strategies and evaluate its preliminary performance in a realistic Low Earth Orbit (LEO) scenario demonstrating it usefulness for planning future DTN-based satellite networks.
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