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Cognitive Radar Waveform Optimization Based on Mutual Information and Kalman filtering

机译:基于相互信息和卡尔曼滤波的认知雷达波形优化

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摘要

A new strategy to optimizing the waveforms of cognitive radar under transmitted power constraint is presented. Our scheme is to enhance the performance of target estimation by minimizing the MSE (mean-square error) of the estimates of target scattering coefficients (TSC) based on Kalman filtering and then minimizing mutual information (MI) between the radar target echoes at successive time instants. The two steps are the optimal design of transmission waveform and the selection of a reasonable waveform from the ensemble for emission, respectively. The waveform design technique addresses the problems of target detection and parameter estimation in intelligent transportation system (ITS), where there is a need of extracting the features of target information obtained from different sensors. As the number of iterations increases, simulation results show better TSC estimation from the radar scene provided by the proposed approach as compared with the traditional waveform optimization algorithm. In addition, the proposed algorithm results in improved target detection probability.
机译:介绍了在传输功率约束下优化认知雷达的波形的新策略。我们的方案是通过基于Kalman滤波最小化目标散射系数(TSC)估计的MSE(平均误差)来提高目标估计的性能,然后在连续时间下最小化雷达目标回波之间的互信息(MI)瞬间。这两个步骤是传输波形的最佳设计以及分别从集合中选择合理的波形进行发射。波形设计技术解决了智能运输系统(其)中目标检测和参数估计的问题,其中需要提取从不同传感器获得的目标信息的特征。随着迭代的数量的增加,仿真结果显示,与传统波形优化算法相比,通过所提出的方法提供的雷达场景的雷达估计更好。另外,所提出的算法导致了改进的目标检测概率。

著录项

  • 期刊名称 Entropy
  • 作者

    Yu Yao; Junhui Zhao; Lenan Wu;

  • 作者单位
  • 年(卷),期 2018(20),9
  • 年度 2018
  • 页码 653
  • 总页数 14
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:认知雷达;目标散射系数(TSC);卡尔曼滤波;互信息(MI);波形优化;

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