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DeepNIS: Deep Neural Network for Nonlinear Electromagnetic Inverse Scattering

机译:DeepNIS:用于非线性电磁逆散射的深层神经网络

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Nonlinear electromagnetic (EM) inverse scattering is a quantitative and super-resolution imaging technique, in which more realistic interactions between the internal structure of scene and EM wavefield are taken into account in the imaging procedure, in contrast to conventional tomography. However, it poses important challenges arising from its intrinsic strong nonlinearity, ill-posedness, and expensive computational costs. To tackle these difficulties, we, for the first time to our best knowledge, exploit a connection between the deep neural network (DNN) architecture and the iterative method of nonlinear EM inverse scattering. This enables the development of a novel DNN-based methodology for nonlinear EM inverse problems (termed here DeepNIS). The proposed DeepNIS consists of a cascade of multilayer complex-valued residual convolutional neural network modules. We numerically and experimentally demonstrate that the DeepNIS outperforms remarkably conventional nonlinear inverse scattering methods in terms of both the image quality and computational time. We show that DeepNIS can learn a general model approximating the underlying EM inverse scattering system. It is expected that the DeepNIS will serve as powerful tool in treating highly nonlinear EM inverse scattering problems over different frequency bands, which are extremely hard and impractical to solve using conventional inverse scattering methods.
机译:非线性电磁(EM)逆散射是一种定量和超分辨率的成像技术,与常规层析成像相比,在成像过程中考虑了场景内部结构和EM波场之间的更现实的相互作用。然而,由于其固有的强非线性,不适定性和昂贵的计算成本,它提出了重要的挑战。为了解决这些困难,我们首次以自己的专业知识,利用深层神经网络(DNN)架构与非线性EM逆散射的迭代方法之间的联系。这样就可以开发出一种基于DNN的新颖方法,用于解决非线性EM反问题(此处称为DeepNIS)。拟议的DeepNIS由级联的多层复值残差卷积神经网络模块组成。我们通过数值和实验证明,在图像质量和计算时间方面,DeepNIS的性能明显优于传统的非线性逆散射方法。我们证明了DeepNIS可以学习近似于基本EM逆散射系统的通用模型。可以预期,DeepNIS将成为处理不同频带上的高度非线性EM逆散射问题的有力工具,这对于使用常规逆散射方法很难解决且不切实际。

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