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Hybrid Experiential-Heuristic Cognitive Radio Engine Architecture and Implementation

机译:混合体验式认知无线电引擎架构与实现

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The concept of cognitive radio (CR) focuses on devices that can sense their environment, adapt configuration parameters, and learn from past behaviors. Architectures tend towards simplified decision-making algorithms inspired by human cognition. Initial works defined cognitive engines (CEs) founded on heuristics, such as genetic algorithms (GAs), and case-based reasoning (CBR) experiential learning algorithms. This hybrid architecture enables both long-term learning, faster decisions based on past experience, and capability to still adapt to new environments. This paper details an autonomous implementation of a hybrid CBR-GA CE architecture on a universal serial radio peripheral (USRP) software-defined radio focused on link adaptation. Details include overall process flow, case base structure/retrieval method, estimation approach within the GA, and hardware-software lessons learned. Unique solutions to realizing the concept include mechanisms for combining vector distance and past fitness into an aggregate quantification of similarity. Over-the-air performance under several interference conditions is measured using signal-to-noise ratio, packet error rate, spectral efficiency, and throughput as observable metrics. Results indicate that the CE is successfully able to autonomously change transmit power, modulation/coding, and packet size to maintain the link while a non-cognitive approach loses connectivity. Solutions to existing shortcomings are proposed for improving case-base searching and performance estimation methods.
机译:认知无线电(CR)的概念侧重于可以感知其环境,调整配置参数并从过去的行为中学习的设备。架构倾向于采用受人类认知启发的简化决策算法。最初的作品定义了基于启发式算法的认知引擎(CE),例如遗传算法(GA)和基于案例的推理(CBR)的体验式学习算法。这种混合体系结构既可以进行长期学习,又可以根据过去的经验做出更快的决策,并能够适应新的环境。本文详细介绍了混合CBR-GA CE架构在通用串行无线电外围设备(USRP)软件定义的无线电上的自主实现,重点是链路自适应。详细信息包括总体流程,案例库结构/检索方法,GA中的估算方法以及所学到的硬件软件课程。实现该概念的独特解决方案包括将向量距离和过去适应度组合为相似度的总量的机制。使用信噪比,数据包错误率,频谱效率和吞吐量作为可观察指标来测量几种干扰条件下的空中性能。结果表明,CE能够成功地自主更改发射功率,调制/编码和数据包大小,以维持链接,而非认知方法会失去连接性。提出了针对现有缺点的解决方案,以改进基于案例的搜索和性能估计方法。

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