天基传感器网络的通信体系结构

L. Clare, J.L. Gao, E. Jennings, C. Okino
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引用次数: 8

摘要

许多计划和提议的未来空间探索任务使用多个航天器执行多点传感。分布式天基传感任务可以从交叉链接通信能力的整合中显著受益,从而形成天基网络,通过单次地面接触、实时协调观测和航天器空间邻域内的自主原位处理,实现对任何/所有航天器的连续访问。我们提出了一种基于空间传感器网络的通信架构。由于航天器间距离大,采用定向天线,每个航天器使用一个半双工收发器以实现低成本。轨道运动导致航天器之间的动态(尽管是可预测的)几何(和拓扑)。主要提供的流量是预定到地球地面站的传感器遥测,尽管也处理其他流量模式。我们提出了一种技术,该技术派生链路激活时间表(发送/接收模式和通信邻居选择)和路由,用于通过网络进行有效的流量中继,利用树形网络的Florens和McEliece算法。给出了一个示例,并对吞吐量和延迟性能进行了评估。描述了对网络方法的一种扩展,即流量自适应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Communications architecture for space-based sensor networks
Numerous planned and proposed future space exploration missions employ multiple spacecraft that perform multipoint sensing. Distributed space-based sensing missions can significantly benefit from incorporation of cross-link communications capabilities, thereby forming space-based networks, by enabling continuous access to any/all spacecraft via a single ground contact, real-time coordinated observations, and autonomous in situ processing within a spatial neighborhood of spacecraft. We present a communications architecture for space-based sensor networks. Because of the large inter-spacecraft distances, directional antennas are used, with a single half-duplex transceiver per spacecraft to achieve low cost. Orbital motion induces a dynamic albeit predictable geometry (and topology) among the spacecraft. Primary offered traffic is sensor telemetry destined to the Earth ground station, although other traffic patterns are also treated. We present a technique that derives the link activation schedule (transmit/receive mode and communications neighbor selection) and routes used for efficient traffic relay through the network, leveraging the Florens and McEliece algorithm for tree networks. An illustrative example is presented, and throughput and latency performance are evaluated. An extension to the networking method is described that is traffic adaptive.
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