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Implementation of a space communications cognitive engine

机译:空间通信认知引擎的实现

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Although communications-based cognitive engines have been proposed, very few have been implemented in a full system, especially in a space communications system. In this paper, we detail the implementation of a multi-objective reinforcement-learning algorithm and deep artificial neural networks for the use as a radio-resource-allocation controller. The modular software architecture presented encourages re-use and easy modification for trying different algorithms. Various trade studies involved with the system implementation and integration are discussed. These include the choice of software libraries that provide platform flexibility and promote reusability, choices regarding the deployment of this cognitive engine within a system architecture using the DVB-S2 standard and commercial hardware, and constraints placed on the cognitive engine caused by real-world radio constraints. The implemented radio-resource-allocation-management controller was then integrated with the larger space-ground system developed by NASA Glenn Research Center (GRC).
机译:尽管已经提出了基于通信的认知引擎,但是在整个系统中,尤其是在空间通信系统中,实现的引擎很少。在本文中,我们详细介绍了多目标强化学习算法和深度人工神经网络的实现,以用作无线电资源分配控制器。提出的模块化软件体系结构鼓励重用和轻松修改,以尝试不同的算法。讨论了涉及系统实现和集成的各种贸易研究。这些选择包括提供平台灵活性和提高可重用性的软件库,使用DVB-S2标准和商用硬件在系统架构内部署此认知引擎的选择,以及现实无线电对认知引擎造成的限制。约束。然后将已实现的无线电资源分配管理控制器与NASA格伦研究中心(GRC)开发的更大的空间地面系统集成。

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