文章摘要
王国庆,王朝铺,刘传辉,刘宁波,丁昊.利用神经网络的海杂波幅度分布参数估计方法[J].,2019,34(6):480-487
利用神经网络的海杂波幅度分布参数估计方法
Amplitude Distribution Parameter Estimation Method of Sea Clutter Using Neural Network
  
DOI:10.7682/j.issn.1673-1522.2019.06.003
中文关键词: 深度学习  神经网络  海杂波  参数估计
英文关键词: deep learning  neural network  sea clutter  parameter estimation
基金项目:
作者单位
王国庆 海军航空大学,山东烟台 264001 
王朝铺 北京理工大学计算机学院,北京 100081 
刘传辉 海军航空大学,山东烟台 264001 
刘宁波 海军航空大学,山东烟台 264001 
丁昊 海军航空大学,山东烟台 264001 
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中文摘要:
      海杂波是制约对海雷达探测性能的主要因素之一,掌握其特性,具有十分重要的意义。经典海杂波统计模型在参数估计方法上以传统统计学理论为基础,在样本数较少的情况下,估计结果往往较差,导致建模准确度下降。此外,在复杂非均匀探测背景下,难以实现海杂波模型参数的准确实时估计。针对该问题,文章将深度神经网络模型引入海杂波参数估计领域,通过构建合理的模型,使其具备海杂波幅度分布模型的高精度参数估计能力。该方法采用直方图统计的方法进行数据预处理,合理划分输入数据标签的分组区间,构建数据集训练神经网络,并利用测试数据得到神经网络估计结果。仿真数据和 X波段 IPIX雷达实测数据验证结果表明,与传统数理统计估计方法相比,该算法明显提升了海杂波统计模型参数估计精度。
英文摘要:
      Sea clutter is one of the main factors that restrict the detection performance of the sea radar, and mastering itscharacteristics are very important. The classical statistical model of sea clutter is based on the traditional statistical theory,in the case of a small number of samples, the estimation results tend to be poor, and resulting in a decrease in modeling ac?curacy. In addition, in the complex and non-uniform detection background, it is difficult to achieve accurate real-time esti?mation of the sea clutter parameters. Aiming at this problem, in this paper deep neural network model was introduced intothe field of sea clutter parameters estimation, and a reasonable model was built to make it have the high-precision parame?ters estimation ability of the sea clutter amplitude distribution model. The method uses the histogram statistics method topreprocess the data, rationalized the grouping interval of the input data labels, constructs the data set to training neural net?work, and use the test data to obtain the neural network estimation results. The simulation data and the X-band IPIX radarshow that compared with traditional mathematical statistical estimation method, the algorithm significantly improves the es?timation accuracy of the sea clutter statistical model parameter.
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