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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing. >Multiview Synthetic Aperture Radar Automatic Target Recognition Optimization: Modeling and Implementation
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Multiview Synthetic Aperture Radar Automatic Target Recognition Optimization: Modeling and Implementation

机译:多视图合成孔径雷达自动目标识别优化:建模与实现

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Multiview synthetic aperture radar (SAR) images could provide much richer information for automatic target recognition (ATR) than from a single-view image. It is desirable to find optimal SAR platform flight paths and acquire a sequence of SAR images from appropriate views, so that multiview SAR ATR can be carried out accurately and efficiently. In this paper, a novel optimization framework for multiview SAR ATR is proposed and implemented. The geometry of the multiview SAR ATR is modeled according to the recognition mission and flight environment. Then, the multiview SAR ATR is abstracted and transformed into a constrained multiobjective optimization problem with objective functions considering the tradeoffs between recognition performance and efficiency and security. A specific approach based on convolutional neural network ensemble and constrained nondominated sorting genetic algorithm II is employed to solve the multiobjective optimization, and optimal flight paths and corresponding imaging viewpoints are obtained. The SAR sensor can thus choose an applicable flight path to acquire the multiview SAR images from different tradeoff solutions according to application requirements. Finally, accurate recognition results can be obtained based on those multiview SAR images. Extensive experiments have shown the validity and superiority of the proposed optimization framework of multiview SAR ATR.
机译:与单视图图像相比,多视图合成孔径雷达(SAR)图像可以为自动目标识别(ATR)提供更丰富的信息。希望找到最佳的SAR平台飞行路径并从适当的视图中获取一系列SAR图像,以便可以准确,高效地执行多视图SAR ATR。本文提出并实现了一种新颖的多视场SAR ATR优化框架。根据识别任务和飞行环境对多视图SAR ATR的几何形状进行建模。然后,将多视图SAR ATR抽象化,并转化为具有目标函数的约束多目标优化问题,同时考虑到识别性能与效率和安全性之间的权衡。采用基于卷积神经网络集成和约束非支配排序遗传算法II的特定方法求解多目标优化问题,获得最优飞行路径和相应的成像视点。因此,SAR传感器可以根据应用要求选择适用的飞行路径,以从不同的权衡解决方案中获取多视图SAR图像。最后,基于这些多视图SAR图像可以获得准确的识别结果。大量实验表明,所提出的多视图SAR ATR优化框架的有效性和优越性。

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