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Determination of data dimensionality in hyperspectral imagery - A noise-adjusted transformed Derschgorin disk approach

机译:确定高光谱图像中的数据维数-噪声调整后的Derschgorin圆盘方法

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In hyperspectral image analysis, determining a distinct material number is an important task for subsequent classification processes. Identifying the number of distinct materials is essentially the same task as determining the intrinsic dimensionality of the imaging spectrometer data. Minimum noise fraction (MNF) transformation or noise-adjusted principal component analysis (NAPCA) is a highly effective means of determining the inherent dimensionality of image data. However, inaccuracy in the noise estimation degrades the validity of this estimation. To effectively resolve this problem, this work presents a Noise-Adjusted Transformed Gerschgorin Disk approach (NATGD) which incorporates the NAPCA method into a transformed Gerschgorin disk (TGD) approach. By noise--adjusted, Gerschgorin disks in NATGD can be formed into two distinct, non-overlapping collections; one for signals and the other for noises. Hence, the number of distinct materials can be visually determined by counting the number of Gerschgorin disks for signals. Experimental results demonstrate that the method proposed herein can effectively solve the intrinsic dimensionality problem.
机译:在高光谱图像分析中,确定不同的物料编号是后续分类过程的重要任务。识别不同材料的数量与确定成像光谱仪数据的固有维数本质上是相同的任务。最小噪声分数(MNF)变换或噪声调整后的主成分分析(NAPCA)是确定图像数据固有维数的高效方法。然而,噪声估计中的不准确性降低了该估计的有效性。为了有效地解决此问题,这项工作提出了一种经过噪声调整的变换的Gerschgorin磁盘方法(NATGD),该方法将NAPCA方法合并到了变换的Gerschgorin磁盘(TGD)方法中。通过调整噪声,可以将NATGD中的Gerschgorin磁盘形成两个不同的,不重叠的集合;一个用于信号,另一个用于噪声。因此,可以通过计数信号的Gerschgorin盘的数量来直观地确定不同材料的数量。实验结果表明,本文提出的方法可以有效解决固有维数问题。

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