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A NOVEL RADAR SIGNAL RECOGNITION METHOD BASED ON A DEEP RESTRICTED BOLTZMANN MACHINE

机译:一种基于深度限制Boltzmann机的新型雷达信号识别方法

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摘要

Radar signal recognition is of great importance in the field of electronic intelligence reconnaissance. To deal with the problem of parameter complexity and agility of multi-function radars in radar signal recognition, a new mode! called radar signal recognition based on the deep restricted Boltzmann machine (RSRDRBM) is proposed to extract the feature parameters and recognize the radar emitter. This model is composed of multiple restricted Boltzmann machines. A bottom-up hierarchical unsupervised learning is used to obtain the initial parameters, and then the traditional back propagation (BP) algorithm is conducted to fine-tune the network parameters. Softmax algorithm is used to classify’ the results at last. Simulation and comparison experiments show that the proposed method has the ability of extracting the parameter features and recognizing the radar emitters, and it is characterized with strong robustness as well as highly correct recognition rate.
机译:雷达信号识别在电子智能侦察领域具有重要意义。 为了解决雷达信号识别中多功能雷达的参数复杂性和敏捷性的问题,一种新模式! 提出了基于深度限制的Boltzmann机器(RSRDRBM)的雷达信号识别以提取特征参数并识别雷达发射器。 该模型由多个限制的Boltzmann机器组成。 自下而上的分层无监督学习用于获得初始参数,然后进行传统的后传播(BP)算法以微调网络参数。 softmax算法用于对“终点”进行分类。 模拟和比较实验表明,该方法具有提取参数特征并识别雷达发射器的能力,其特征在于强大的鲁棒性以及高度正确的识别率。

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