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Kent mixture model for classification of remote sensing data on spherical manifolds

机译:肯特混合模型用于球形流形上的遥感数据分类

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Modern remote sensing imaging sensor technology provides detailed spectral and spatial information that enables precise analysis of land cover usage. From a research point of view, traditional widely used statistical models are often limited in the sense that they do not incorporate some of the useful directional information contained in the feature vectors, and hence alternative modeling methods are required. In this paper, use of cosine angle information and its embedding onto a spherical manifold is investigated. The transformation of remote sensing images onto a unit spherical manifold is achieved by using the recently proposed spherical embedding approach. Spherical embedding is a method that computes high-dimensional local neighborhood preserving coordinates of data on constant curvature manifolds. We further develop a novel Kent mixture model for unsupervised classification of embedded cosine pixel coordinates. A Kent distribution is one of the natural models for multivariate data on a spherical surface. Parameters for the model are estimated using the Expectation-Maximization procedure. The mixture model is applied to two different Airborne Visible/Infrared Imaging Spectrometer (AVIRIS) data that were acquired from the Tippecanoe County in Indiana. The results obtained present insights on cosine pixel coordinates and also serve as a motivation for further development of new models to analyze remote sensing images in spherical manifolds.
机译:现代遥感影像传感器技术可提供详细的光谱和空间信息,从而能够精确分析土地覆盖物的使用情况。从研究的角度来看,传统的广泛使用的统计模型通常会受到限制,因为它们没有包含特征向量中包含的一些有用的方向信息,因此需要替代的建模方法。在本文中,研究了余弦角信息的使用及其在球形流形中的嵌入。通过使用最近提出的球形嵌入方法,可以将遥感影像转换成一个单位球形歧管。球形嵌入是一种在等曲率流形上计算数据的高维局部邻域保留坐标的方法。我们进一步开发了一种新型的Kent混合模型,用于嵌入式余弦像素坐标的无监督分类。肯特分布是球面上多元数据的自然模型之一。使用“期望最大化”过程估计模型的参数。混合模型应用于两个不同的机载可见/红外成像光谱仪(AVIRIS)数据,这些数据是从印第安纳州的Tippecanoe县获得的。获得的结果提供了关于余弦像素坐标的见解,也为进一步开发新模型以分析球形流形中的遥感图像提供了动力。

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