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首页> 外文期刊>IEEE Transactions on Image Processing >Material Based Object Tracking in Hyperspectral Videos
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Material Based Object Tracking in Hyperspectral Videos

机译:基于物料基于高光谱视频的对象跟踪

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摘要

Traditional color images only depict color intensities in red, green and blue channels, often making object trackers fail in challenging scenarios, e.g., background clutter and rapid changes of target appearance. Alternatively, material information of targets contained in large amount of bands of hyperspectral images (HSI) is more robust to these difficult conditions. In this paper, we conduct a comprehensive study on how material information can be utilized to boost object tracking from three aspects: dataset, material feature representation and material based tracking. In terms of dataset, we construct a dataset of fully-annotated videos, which contain both hyperspectral and color sequences of the same scene. Material information is represented by spectral-spatial histogram of multidimensional gradients, which describes the 3D local spectral-spatial structure in an HSI, and fractional abundances of constituted material components which encode the underlying material distribution. These two types of features are embedded into correlation filters, yielding material based tracking. Experimental results on the collected dataset show the potentials and advantages of material based object tracking.
机译:传统的彩色图像仅描绘红色,绿色和蓝色频道的颜色强度,通常使物体跟踪器在具有挑战性的情况下失败,例如背景杂波和目标外观的快速变化。或者,在大量的高光谱图像(HSI)中包含的目标的材料信息对这些困难的条件更加鲁棒。在本文中,我们对材料信息如何利用来促进三个方面的对象跟踪进行全面研究:数据集,材料特征表示和基于材料的跟踪。在数据集方面,我们构建一个完全注释视频的数据集,其包含同一场景的高光谱和颜色序列。材料信息由多维梯度的光谱空间直方图表示,其描述了HSI中的3D局部光谱空间结构,以及编码底层材料分布的构成材料部件的分数丰度。将这两种类型的特征嵌入到相关滤波器中,从而产生基于材料的跟踪。收集的数据集上的实验结果显示了基于物料的物体跟踪的电位和优点。

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