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A Novel Curve Fitting Feature Extraction Method for Hyperspectral Image

机译:一种新的高光谱图像曲线拟合特征提取方法

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In hyperspectral image classification, many of the existing feature extraction methods using spectral information have aroused extensively attention. However, it is difficult to characterize the geometric properties of the spectral response curves (SRCs) only depending on the spectral information. A novel feature extraction method using Maclaurin series function curve fitting was proposed in this paper. The new features for each spectral response curve of hyperspectral image pixels can be reconstructed through curve fitting. Then, the coefficients of the fitted Maclaurin series function are considered as extracted features that can better capture the intrinsic geometrical nature of spectral response curves. The proposed method concentrates on the reflectance coefficients information commendably that has not been addressed by lots of other analysis methods. The proposed method shows better superiority compared to conventional feature extraction methods when a maximum likelihood classifier (MLC) is used in hyperspectral image dataset Indian Pines.
机译:在高光谱图像分类中,使用光谱信息的许多现有特征提取方法引起了广泛的关注。但是,仅根据光谱信息很难表征光谱响应曲线(SRC)的几何特性。提出了一种利用麦克劳林级数函数曲线拟合的特征提取方法。高光谱图像像素的每个光谱响应曲线的新功能都可以通过曲线拟合来重建。然后,拟合的Maclaurin级数函数的系数被视为提取的特征,可以更好地捕获光谱响应曲线的内在几何特性。所提出的方法集中于值得称赞的反射系数信息,而其他许多分析方法都未解决该信息。当在高光谱图像数据集Indian Pines中使用最大似然分类器(MLC)时,与常规特征提取方法相比,该方法具有更好的优越性。

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