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首页> 外文期刊>EURASIP journal on advances in signal processing >Spatial and temporal point tracking in real hyperspectral images
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Spatial and temporal point tracking in real hyperspectral images

机译:真实高光谱图像中的时空点跟踪

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摘要

In this article, we consider the problem of tracking a point target moving against a background of sky and clouds. The proposed solution consists of three stages: the first stage transforms the hyperspectral cubes into a two-dimensional (2D) temporal sequence using known point target detection acquisition methods; the second stage involves the temporal separation of the 2D sequence into sub-sequences and the usage of a variance filter (VF) to detect the presence of targets using the temporal profile of each pixel in its group, while suppressing clutter-specific influences. This stage creates a new sequence containing a target with a seemingly faster velocity; the third stage applies the Dynamic Programming Algorithm (DPA) that tracks moving targets with low SNR at around pixel velocity. The system is tested on both synthetic and real data.
机译:在本文中,我们考虑跟踪在天空和云彩背景下移动的点目标的问题。所提出的解决方案包括三个阶段:第一阶段使用已知的点目标检测采集方法将高光谱立方体转换为二维(2D)时间序列。第二阶段包括将2D序列在时间上分离为子序列,并使用方差滤波器(VF)使用其组中每个像素的时间配置文件来检测目标的存在,同时抑制特定于杂波的影响。这个阶段创建了一个新序列,其中包含了一个看似更快的目标。第三阶段应用动态编程算法(DPA),该算法以大约像素速度跟踪具有低SNR的运动目标。该系统已在综合数据和真实数据上进行了测试。

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