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A Simple and Effective Clustering Algorithm for Multispectral Images Using Space-Filling Curves

机译:基于空间填充曲线的简单有效的多光谱图像聚类算法

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With the wide usage of multispectral images, a fast efficient multidimensional clustering method becomes not only meaningful but also necessary. In general, to speed up the multidimensional images' analysis, a multidimensional feature vector should be transformed into a lower dimensional space. The Hilbert curve is a continuous one-to-one mapping from Ar-dimensi6nal space to one-dimensional space, and can preserves neighborhood as much as possible. However, because the Hilbert curve is generated by a recurve division process, 'Boundary Effects' will happen, which means data that are close in N-dimensional space may not be close in one-dimensional Hilbert order. In this paper, a new efficient approach based on the space-filling curves is proposed for classifying multispectral satellite images. In order to remove 'Boundary Effects' of the Hilbert curve, multiple Hilbert curves, z curves, and the Pseudo-Hilbert curve are used jointly. The proposed method extracts category clusters from one-dimensional data without computing any distance in A'-dimensional space. Furthermore, multispectral images can be analyzed hierarchically from coarse data distribution to fine data distribution in accordance with different application. The experimental results performed on LANDSAT data have demonstrated that the proposed method is efficient to manage the multispectral images and can be applied easily.
机译:随着多光谱图像的广泛使用,快速有效的多维聚类方法不仅有意义,而且很有必要。通常,为了加速多维图像的分析,应将多维特征向量转换为较低维的空间。希尔伯特曲线是从Ar维空间到一维空间的连续的一对一映射,可以尽可能保留邻域。但是,由于希尔伯特曲线是通过递归除法过程生成的,因此会发生“边界效应”,这意味着在N维空间中接近的数据可能不会在一维希尔伯特顺序中接近。本文提出了一种基于空间填充曲线的有效方法,对多光谱卫星图像进行分类。为了消除希尔伯特曲线的“边界效应”,将多个希尔伯特曲线,z曲线和伪希尔伯特曲线一起使用。所提出的方法从一维数据中提取类别聚类,而无需计算A'维空间中的任何距离。此外,根据不同的应用,可以从粗略数据分布到精细数据分布分层分析多光谱图像。在LANDSAT数据上进行的实验结果表明,该方法可有效管理多光谱图像,并且易于应用。

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