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AERASCIS: An efficient and robust approach for satellite color image segmentation

机译:AERASCIS:卫星彩色图像分割的高效且鲁棒方法

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Satellite color images carry a vast amount of information which needs an efficient image segmentation method to analyze. Because of its simplicity and low complexity, K-Means algorithm is frequently adopted for color image segmentation. But, usually the results of K-Means algorithm suffers from noises and hence over segmentation. This is due to the reasons that K-Means works on the basis of random K initialization and “Euclidean Distance Metric” as default. Also, in the case of satellite color image segmentation local contrast management is an important issue which is not paid attention in the traditional K-Means algorithm. So, in this paper, these problems are taken into consideration and a robust method has been proposed to tackle the same. First of all, HSV color space is chosen for color based transformation and calculations. Here, a Binary Search Based CLAHE is introduced for local contrast management. An entropy based technique is developed for determining the total number clusters and detection of initial centers of the clusters. “Cosine Distance Metric” is employed for distance based calculations involved in K-Means algorithm. The performance of the proposed approach is found robust with respect to noise and over-segmentation is removed up to a satisfactory level.
机译:卫星彩色图像携带大量信息,需要一种有效的图像分段方法来分​​析。由于其简单性和低复杂性,K-Means算法经常用于彩色图像分割。但是,通常K-Means算法的结果遭受噪声并因此过度分割。这是由于K-Means基于随机k初始化和“欧几里德距离度量”默认工作的原因。此外,在卫星彩色图像分割的情况下,本地对比度管理是在传统的K-Means算法中未受到关注的重要问题。因此,在本文中,考虑了这些问题,并提出了一种强大的方法来解决它。首先,选择HSV颜色空间用于基于颜色的转换和计算。这里,引入了基于二进制搜索的CLAHE,用于局部对比度管理。开发了基于熵的技术,用于确定总数集群和群集初始中心的检测。采用“余弦距离度量”用于K-Means算法涉及的基于距离的计算。拟议方法的性能被发现对噪声和过分分割的稳健达到令人满意的水平。

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