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Seafloor terrain detection from acoustic images utilizing the fast two-dimensional CMLD-CFAR

机译:来自声像的海底地形检测,利用快速二维CMLD-CFAR

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In order to solve the problem of false terrains caused by environmental interferences and tunneling effect in the conventional multi-beam seafloor terrain detection, this paper proposed a seafloor topography detection method based on fast two-dimensional (2D) Censored Mean Level Detector-statistics Constant False Alarm Rate (CMLD-CFAR) method. The proposed method uses s cross-sliding window. The target occlusion phenomenon that occurs in multi-target environments can be eliminated by censoring some of the large cells of the reference cells, while the remaining reference cells are used to calculate the local threshold. The conventional 2D CMLD-CFAR methods need to estimate the background clutter power level for every pixel, thus increasing the computational burden significantly. In order to overcome this limitation, the proposed method uses a fast algorithm to select the Regions of Interest (ROI) based on a global threshold, while the rest pixels are distinguished as clutter directly. The proposed method is verified by experiments with real multi-beam data. The results show that the proposed method can effectively solve the problem of false terrain in a multi-beam terrain survey and achieve a high detection accuracy.
机译:为了解决传统多束海底地形检测中的环境干扰和隧道效应引起的假地带问题,提出了一种基于快速二维(2D)截取的截取平均水平检测器统计常数的海底地形检测方法误报率(CMLD-CFAR)方法。所提出的方法使用S交叉滑动窗口。通过对参考电池的一些大单元消除,可以消除在多目标环境中发生的目标闭塞现象,而剩余的参考电池用于计算局部阈值。传统的2D CMLD-CFAR方法需要估计每个像素的背景杂波功率水平,从而显着提高计算负担。为了克服这种限制,所提出的方法使用快速算法基于全局阈值来选择感兴趣区域(ROI),而其他像素直接区分为杂乱。通过使用真实多光束数据的实验验证所提出的方法。结果表明,该方法可以有效地解决了多梁地形调查中的假地形问题并实现了高检测精度。

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