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Autonomous and Autonomic Systems: A Paradigm for Future Space Exploration Missions

机译:自治和自治系统:未来太空探索任务的范例

摘要

NASA increasingly will rely on autonomous systems concepts, not only in the mission control centers on the ground, but also on spacecraft and on rovers and other assets on extraterrestrial bodies. Automomy enables not only reduced operations costs, But also adaptable goal-driven functionality of mission systems. Space missions lacking autonomy will be unable to achieve the full range of advanced mission objectives, given that human control under dynamic environmental conditions will not be feasible due, in part, to the unavoidably high signal propagation latency and constrained data rates of mission communications links. While autonomy cost-effectively supports accomplishment of mission goals, autonomicity supports survivability of remote mission assets, especially when human tending is not feasible. Autonomic system properties (which ensure self-configuring, self-optimizing self-healing, and self-protecting behavior) conceptually may enable space missions of a higher order into any previously flown. Analysis of two NASA agent-based systems previously prototyped, and of a proposed future mission involving numerous cooperating spacecraft, illustrates how autonomous and autonomic system concepts may be brought to bear on future space missions.
机译:NASA将越来越依赖自主系统的概念,不仅是在地面的任务控制中心,而且还将是航天器,漫游者和地球外物体上的其他资产。 Automomy不仅可以降低运营成本,还可以使任务系统适应目标驱动的功能。缺乏自主性的太空任务将无法实现全部先进任务目标,因为在动态环境条件下进行人工控制是不可行的,这在一定程度上是由于不可避免的高信号传播延迟和任务通信链路的数据速率受限。自治可以经济高效地支持完成任务目标,而自治则可以支持远程任务资产的生存能力,尤其是在人工抚育不可行的情况下。自主系统的属性(可确保自我配置,自我优化的自我修复和自我保护的行为)从概念上讲可以使更高级别的太空飞行任务进入任何先前飞行的任务。对先前原型化的两个基于NASA代理的系统以及涉及众多合作航天器的拟议未来飞行任务的分析表明,如何将自主和自主系统的概念应用于未来的飞行任务。

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