Inverse Scattering via Cascaded Neural Network

Lei Yao, Shiyong Li, Houjun Sun, Qiang An

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Traditional nonlinear solutions for inverse scattering problem have the drawback of high computational complexity. Its approximated alternative, back-projection (BP) algorithm, can achieve a good trade-off between imaging quality and complexity. However, in the case of limited frequency samples, BP suffers from the image quality degeneration. In order to achieve high-resolution imaging, this work turns to deep learning (DL) based approach and proposes an end-To-end cascaded neural network structure, namely a convolutional neural network (CNN) followed by a UNet network. Firstly, the equivalence between the fully connected network and the BP algorithm is derived. Secondly, to increase the learning ability of the network and avoid overfitting, a CNN is used to replace the fully connected network. By directly focusing the raw scattered radar echoes using the network, a coarse radar imagery of the region under investigation can be obtained. Then, a UN et network is further cascaded to suppress the clutter and improve the image quality of the coarse focused radar imagery. Finally, EM simulations using the MINST dataset are conducted to train the proposed network. The results show that the reconstruction using the trained cascaded network outperforms the BP algorithm under the condition that the computational complexity of the proposed algorithm and the BP algorithm is close. A better focusing performance is achieved as expected.

源语言英语
主期刊名Proceedings of 2021 IEEE International Conference on Signal Processing, Communications and Computing, ICSPCC 2021
出版商Institute of Electrical and Electronics Engineers Inc.
ISBN(电子版)9781665429184
DOI
出版状态已出版 - 17 8月 2021
活动2021 IEEE International Conference on Signal Processing, Communications and Computing, ICSPCC 2021 - Xi�an, 中国
期限: 17 8月 202119 8月 2021

出版系列

姓名Proceedings of 2021 IEEE International Conference on Signal Processing, Communications and Computing, ICSPCC 2021

会议

会议2021 IEEE International Conference on Signal Processing, Communications and Computing, ICSPCC 2021
国家/地区中国
Xi�an
时期17/08/2119/08/21

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