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首页> 外文期刊>IEE proceedings. Radar, sonar and navigation >Super-resolution range-Doppler imaging
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Super-resolution range-Doppler imaging

机译:超分辨率距离多普勒成像

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摘要

The general observation model for range-Doppler imaging is established from the point of view of multiple scatter-point localisation, and the optimum imaging procedure based on the maximum likelihood principle is given. Pursuing simplified procedures, the authors present three super-resolution range-Doppler imaging methods, including the linear prediction data extrapolation DFT (LPDEDFT), the dynamic optimisation linear least-squares (DOLLS), and the Hopfield neural network nonlinear least-squares (HNNNLS) methods. The live data of a metallised scale model B-52 aircraft mounted on a rotating platform in a microwave anechoic chamber and a flying Boeing-727 aircraft as well as the simulated data of an aircraft were processed. The imaging results indicate that, compared to the conventional Fourier method, a higher resolution for the same effective bandwidth of transmitted signals and total rotation angle of the object may be obtained by these super-resolution approaches.
机译:从多散射点定位的角度建立了距离多普勒成像的通用观测模型,并给出了基于最大似然原理的最优成像程序。为了简化程序,作者提出了三种超分辨率范围多普勒成像方法,包括线性预测数据外推DFT(LPDEDFT),动态优化线性最小二乘法(DOLLS)和Hopfield神经网络非线性最小二乘法(HNNNLS) ) 方法。处理了安装在微波消声室内旋转平台上的金属化B-52型飞机的实时数据和波音727飞机的实时数据,以及飞机的模拟数据。成像结果表明,与常规傅立叶方法相比,通过这些超分辨率方法,对于相同的发射信号有效带宽和物体的总旋转角度,可以获得更高的分辨率。

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