雷达处理的神经网络方法

A. L. Tatuzov
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引用次数: 6

摘要

由于现有算法的灵活性差和传统计算机设备的计算能力低,雷达自动数据处理存在很大的困难。由于神经并行硬件的计算能力和神经算法的自适应能力,神经网络可以帮助雷达设计人员克服这些困难。提出并分析了神经网络在最困难雷达问题中的应用思想。提出并讨论了雷达信息处理中的一些神经方法:相控阵天线权值自适应、多基编码信号优化的遗传算法、多目标环境下的数据关联、决策系统的神经训练。对所提方法的分析结果表明,将神经网络应用于雷达信息处理问题,可以显著提高效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neural network methods for radar processing
There are significant difficulties in radar automatic data processing arising from poor flexibility of known algorithms and low computational capacity of traditional computer devices. Neural networks can help the radar designer to overcome these difficulties as a result of computational power of neural parallel hardware and adaptive capabilities of neural algorithms. The idea of neural net application in the most difficult radar problems is proposed and analyzed. Some examples of neural methods for radar information processing are proposed and discussed: phase array antenna weights adaptation, genetic algorithms for optimization of multibased coded signals, data associations in multitarget environment, neural training for decision making systems. Results of the analysis for proposed methods prove that a considerable increase in efficiency can be achieved when neural networks are used for radar information processing problems.
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