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Application of the JPDA-UKF to HFSW Radars for Maritime Situational Awareness

机译:JPDA-UKF将JPDA-UKF应用于HFSW雷达以进行海上态势意识

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At the present day, growing interest is paid to the development of more reliable surveillance systems for maritime situational awareness (MSA). The purpose is to detect, track and classify cooperative and non-cooperative targets. For this reason, great interest is given to low-power/cost High-Frequency Surface-Wave (HFSW) radars as an early-warning tool for overthe- horizon (OTH) applications. However, in HFSW radars there is a trade-off in terms of quality and cost, i.e. the radar system exhibits poor azimuth resolution, high non-linearity, and significant false alarm rate. All these aspects reduce tracking performance if not properly addressed. In this context, the Joint Probabilistic Data Association (JPDA) with the Unscented Kalman Filter (UKF) is proposed. The tracking algorithm behavior is investigated by a comparison between the tracks generated by two HFSW radars, with overlapped fields of view, and Automatic Identification System (AIS) data. A discussion is provided about the possible effectiveness of HFSW radar fusion strategies. Preliminary results from a HFSW Radar experiment are reported and discussed.
机译:目前,越来越多的兴趣是向海上态势意识(MSA)更可靠的监视系统的开发。目的是检测,跟踪和分类合作和非合作目标。因此,将低功率/成本高频表面波(HFSW)雷达提供了极大的兴趣作为过度地平线(OTH)应用的预警工具。然而,在HFSW雷达中,在质量和成本方面存在权衡,即雷达系统表现出较差的方位分辨率,高线性度和显着的误报率。如果未正确解决,所有这些方面都会降低跟踪性能。在这种情况下,提出了具有Unscented Kalman滤波器(UKF)的联合概率数据关联(JPDA)。通过两个HFSW雷达产生的轨道之间的比较来研究跟踪算法行为,其中具有重叠的视图和自动识别系统(AIS)数据。提供了关于HFSW雷达融合策略的可能有效性的讨论。报告并讨论了HFSW雷达实验的初步结果。

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