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Deep neural network-aided coherent integration method for maneuvering target detection

机译:用于操纵目标检测的深度神经网络辅助相结合方法

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摘要

Generalized Radon-Fourier transform (GRFT) is a classical long-time coherent integration method for radar maneuvering target detection. GRFT, whose core is to achieve motion parameter estimation via searching, can almost reach the optimal detection performance but heavily suffers from the high computational cost. Motivated by the fact that motion parameter estimation is essentially a non-linear mapping from the radar echo to the target's motion parameters, one can use a deep neural network (DNN), a kind of modeling tool that can learn complex mappings from training data, to directly realize this mapping, thus alleviating the heavy computational burden brought by the searching efforts. Based on this idea, a DNN-aided long-time coherent integration algorithm, which can be viewed as a fast implementation of GRFT, is proposed in this paper. More specifically, we first use a pre-trained DNN to roughly estimate the motion parameters of the target to be detected from the radar echo, and then accomplish the coherent integration of the target for detection via a fine grid search in the neighborhood of the obtained rough estimation results. Finally, simulation results demonstrate that the proposed algorithm can achieve the detection performance close to that of GRFT but with a much lower computational cost.
机译:广义氡 - 傅里叶变换(GRFT)是一种用于雷达机动目标检测的经典长时间相干积分方法。 Grft,其核心是通过搜索实现运动参数估计,几乎可以达到最佳的检测性能,但大量遭受高计算成本。动机,动作参数估计基本上是从雷达回波到目标运动参数的非线性映射,可以使用深神经网络(DNN),一种可以从训练数据学习复杂映射的一种建模工具,直接意识到这种映射,从而减轻了搜索努力所带来的繁重计算负担。基于该思想,本文提出了一种可以被视为Grft的快速实现的DNN辅助的长时间相干积分算法。更具体地,我们首先使用预先训练的DNN来粗略地估计要从雷达回波检测的目标的运动参数,然后完成通过所获得的附近的精细网格搜索的目标进行检测的相干积分粗略估计结果。最后,仿真结果表明,所提出的算法可以实现接近GRFT的检测性能,但具有更低的计算成本。

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