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A novel method of hyperspectral imagery target detection based on sparse representation

机译:基于稀疏表示的高光谱图像目标检测新方法

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The introduction of sparse representation provides a new way for the detection of hyperspectral images. In the detection process, the structure of the dictionary is obtained directly from the hyperspectral image and there are uncertainties. It is very likely that the dictionary may not contain any spectral characteristic information of target pixels, which affects the accuracy in target detection. In order to solve the following problem, this paper proposes a novel method of hyperspectral imagery target detection based on sparse representation, using an unsupervised method to complete the construction of dictionary to ensure that the dictionary contains some spectral information of target pixels. Experiments have been carried out on one hyperspectral image, which reveals that the method we proposed shows an outstanding detection performance.
机译:稀疏表示的引入提供了一种检测高光谱图像的新方法。在检测过程中,直接从高光谱图像中获取字典的结构,存在不确定性。字典很可能不包含目标像素的任何光谱特征信息,这会影响目标检测的准确性。为了解决以下问题,提出了一种基于稀疏表示的高光谱图像目标检测新方法,采用无监督的方法完成字典的构建,以确保字典中包含目标像素的某些光谱信息。在一张高光谱图像上进行了实验,表明我们提出的方法显示了出色的检测性能。

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