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Efficient robust AMF using the enhanced FRACTA algorithm: results from KASSPER I II target detection

机译:使用增强的FRACTA算法的高效鲁棒AMF:KASSPER I和II的结果目标检测

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This paper presents further developments and results of the FRACTA algorithm which has been shown to be robust to nonhomogeneous environments containing outliers. The main focus here is upon the detection of targets in the KASSPER I challenge data cube which possesses dense clusters of targets and the highly nonhomogeneous KASSPER II data in which severe clutter is present over all ranges and Dopplers thereby hindering the identification of a dominant clutter ridge. The KASSPER II dataset is further exacerbated by dense clusters of targets as well as the presence of several deep shadow regions that not only prevent target detection but may also skew covariance matrix estimation. A doppler-dependent thresholding technique is developed which is then incorporated into the FRACTA.E framework and then applied to the KASSPER II dataset. Simulation results are compared with the standard sliding window scheme as well as when clairvoyant knowledge of the covariance matrices is employed. Results verify the improved performance of the FRACTA.E algorithm.
机译:本文介绍了FRACTA算法的进一步发展和结果,该算法已被证明对包含异常值的非均匀环境具有鲁棒性。这里的主要重点是在KASSPER I挑战数据立方体中检测目标,该立方体具有密集的目标簇和高度不均匀的KASSPER II数据,其中在所有范围和多普勒上都存在严重的杂波,从而阻碍了对主要杂波脊的识别。密集的目标簇以及几个深阴影区域的存在进一步加剧了KASSPER II数据集,这不仅妨碍了目标检测,而且可能会使协方差矩阵估计偏斜。开发了一种依赖多普勒的阈值技术,该技术随后被整合到FRACTA.E框架中,然后应用于KASSPER II数据集。仿真结果与标准滑动窗口方案以及采用协方差矩阵的透视知识进行比较。结果证明了FRACTA.E算法的改进性能。

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