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A Multi-Dimensional Hough Transform Algorithm based on Unscented Transform as a Track-Before-Detect method

机译:基于无味变换作为检测前跟踪方法的多维霍夫变换算法

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In this study, a new Multi-Dimensional Hough Transform technique is proposed for the detection of dim targets in radar data. Multi-Dimensional Hough Transform is a Track-Before-Detect method that fuses Hough Transform results obtained on (x-t), (y-t) and (x-y) domains. The proposed study models Hough Transform results in (x-t) and (y-t) domains by Gaussians and transforms these Gaussians to (x-y) domain using Unscented Transform. This improves the computational efficiency significantly without degrading performance. Moreover, the algorithm is modified to make use of the echo amplitude values of the radar data and the prior knowledge of target's maximum speed. Lastly, a score-based track confirmation algorithm is proposed to increase the performance and detect the track location.
机译:在这项研究中,提出了一种新的多维霍夫变换技术,用于检测雷达数据中的暗目标。多维霍夫变换是一种先验后跟踪的方法,将在(x-t),(y-t)和(x-y)域上获得的霍夫变换结果融合在一起。拟议的研究对高斯变换在高斯(x-t)和(y-t)域中的结果进行建模,并使用无味变换将这些高斯变换为(x-y)域。这在不降低性能的情况下显着提高了计算效率。此外,对算法进行了修改,以利用雷达数据的回波振幅值和目标最大速度的先验知识。最后,提出了一种基于分数的航迹确认算法,以提高性能并检测航迹位置。

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