聚类图像的有效形态变换与亚像素分类

Mr. B. Naga Rajesh
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引用次数: 3

摘要

本研究的主要目的是降低形态学运算的时间复杂度和面积复杂度。形态学运算是任何图像处理的关键。利用确定大小的窗口找出最大值和最小值将分别意味着形态扩张和侵蚀。因此所提出的算法在比较和排序方面应该是快速的,这样可以降低时间复杂度。相信锚的概念将促成这一事业。这背后的想法是,它固定了一个像素,并将其设置为中心像素,所有周围的像素将被处理。此外,这是现在实现的矩形结构元素。本文对平面和三维结构元素进行了同样的尝试。高光谱成像是遥感应用的一个发展方向。与以前的多光谱图像相比,超光谱图像包含了更丰富、更好的超凡脱俗的数据。超超凡脱俗的图片是通过超凡脱俗和空间分辨率之间的交换来描述的。超幽灵信息的主要问题是空间目标普遍较低。对于排列,低空间目标带来的严重问题是混合像素。混合像素指的是被一个以上的土地扩展类所涉及的像素。在该方法中,采用了另一种策略来解决混合像素的问题,并获得了更好的土地分布特征图的空间目标。该策略利用了图像聚类方法和幻影调光计算的优点,在亚像素尺度上确定了类的碎片丰度。最后利用翼面规划方法进行空间正则化,在亚像素级对得到的类进行空间查找。
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Effective Morphological Transformation and Sub-pixel Classification of Clustered Images
The main aim of this research work is to perform the morphological operations with reduced time complexity and area complexity. Morphological operation is the key element in any image processing. Finding the maximum and minimum using a window of defined size will imply to the morphological dilation and erosion respectively. So the proposed algorithm should be fast in the comparison and sorting, this way the time complexity could be reduced. It’s believed that the anchor concept will fetch this cause. The idea behind this is it fixes a pixel and setting it as the center pixel all the surrounding pixels will be processed. Moreover this is now been implemented for rectangular structuring element. This paper attempts the same for flat and 3D structuring elements. Hyper-spectral Imaging is a developing zone of remote detecting applications. Hyper-spectral pictures incorporate more extravagant and better otherworldly data than the multi-spectral pictures got previously. Hyper-otherworldly pictures are described by an exchange off between the unearthly and spatial resolution. The principle issue of the hyper-ghostly information is the generally low spatial goal. For arrangement, the serious issue brought about by low spatial goal is the blended pixels. Blended pixels alluded to the pixels which are involved by more than one land spread class. In the proposed procedure another strategy is utilized to address the issue of blended pixels and to get a better spatial goal of the land spread characterization maps. The strategy misuses the upsides of both picture bunching methods and phantom dimming calculations, so as to decide the fragmentary plenitudes of the classes at a sub-pixel scale. Spatial regularization by Flank planning method is at last performed to spatially find the got classes at sub-pixel level.
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