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Distributed Automatic Modulation Classification With Multiple Sensors

机译:具有多个传感器的分布式自动调制分类

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摘要

Automatic modulation classification (AMC) has been intensively studied to enhance the successful classification rate, particularly for overcoming the physical limit that deals with weak signals received in a noncooperative communication environment. A wireless sensor network (WSN) has multiple geometrically distributed sensors to work cooperatively. The distributed signal sensing and classification performed by collaborated sensors is proven to be beneficial to increasing the modulation classification reliability. In this paper, we apply the likelihood ratio-based distributed detection fusion technique to address the issues of general binary modulation classifications. The data fusion algorithm performed in the primary node is presented. Its numerical performance with simulation results is demonstrated.
机译:已经对自动调制分类(AMC)进行了深入研究,以提高成功的分类率,尤其是为了克服处理非合作通信环境中接收到的微弱信号的物理限制。无线传感器网络(WSN)具有多个几何分布的传感器以协同工作。事实证明,由协作传感器执行的分布式信号感测和分类有利于提高调制分类的可靠性。在本文中,我们应用基于似然比的分布式检测融合技术来解决通用二进制调制分类的问题。介绍了在主节点中执行的数据融合算法。仿真结果表明了其数值性能。

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