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基于神经网络的磁性目标磁矩反演方法 被引量:3

Magnetic Moments Estimation Method of a Magnetic Object Based on Neural Network
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摘要 针对磁性目标定位中的磁矩反演问题,提出一种基于神经网络的磁矩反演技术。首先,基于最小二乘原理,建立了磁性目标磁矩反演模型;其次采用Hopfield网络进行了优化求解,并针对模型求解过程中鲁棒性差的弊端,对网络进化策略进行了自适应修正;最后设计了仿真实验对其有效性进行了检验,仿真结果表明利用修正后的网络求解磁矩反演问题结果令人满意,具有一定的实用性。 In localization of magnetic objects, a magnetic moments estimation method is proposed based on neural network. Firstly, a mathematical model is founded to estimate magnetic moments by minimizing the least-squares error at the observation points. Secondly, Hopfield neural network is used to solve the above optimization model and a self-adaptive correction algorithm is taken to improve the robustness of the model. Finally, a numerical experiment is designed to verify the effectiveness of the proposed method. The results show that the practicable method has many advantages such as high accuracy, good robustness, and easy implement.
出处 《船电技术》 2012年第9期57-60,共4页 Marine Electric & Electronic Engineering
关键词 磁矩反演 磁性目标 神经网络 magnetic moments estimation magnetic objects neural network
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参考文献5

  • 1唐劲飞,龚沈光,王金根.基于磁偶极子模型的目标定位和参数估计[J].电子学报,2002,30(4):614-616. 被引量:37
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二级参考文献1

  • 1J. J. Hopfield,D. W. Tank. “Neural” computation of decisions in optimization problems[J] 1985,Biological Cybernetics(3):141~152

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