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Determination of optimum bistatic angle for radar target identification

机译:确定用于雷达目标识别的最佳双基地角

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The transmitter and receiver positions of a bistatic radar are highly influential on its performance in radar target identification since the radar cross-section of a target varies with these positions. In this study, radar target identification performance using calculated bistatic scattering data for three full-scale models and measured data for four-scale-model targets is analyzed and compared. FFT-based CLEAN is used for shift-invariant feature extraction from the bistatic scattering data of each target, and a multilayered perceptron neural network is used as a classifier. The optimum receiver position is found by comparing the calculated identification probabilities while changing the position of the bistatic radar receiver. The identification results using calculated data and measured data show that an optimally positioned bistatic radar yields better identification results, demonstrating the importance of the positions of the transmitter and receiver for bistatic radar.
机译:双基地雷达的发射器和接收器位置对雷达目标识别的性能影响很大,因为目标的雷达横截面随这些位置而变化。在这项研究中,分析并比较了使用三个全尺度模型的计算双基地散射数据和四尺度模型目标的测量数据进行雷达目标识别性能。基于FFT的CLEAN用于从每个目标的双基地散射数据中提取位移不变特征,并将多层感知器神经网络用作分类器。通过比较计算出的识别概率,同时更改双基地雷达接收器的位置,可以找到最佳接收器位置。使用计算数据和测量数据的识别结果表明,最佳定位的双基地雷达可产生更好的识别结果,这表明了双基地雷达发射机和接收机位置的重要性。

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