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Study of Change Detection based on Edge Detection of Satellite Images

机译:基于卫星图像边缘检测的变化检测研究

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This paper focuses on a robust and flexible edge detection technique based on Independent Component Analysis (ICA) on satellite images for recognition and subjective analysis of changes caused due to Japan earthquake 2011 followed by a devastating tsunami. ICA has been applied to satellite image patches to learn the basis functions using the fixed-point FastICA algorithm. As most of the basis functions are sparse, they are used as pattern template for feature extraction. These basis functions are usually localized, band-limited and oriented like Human Visual System (HVS) and resemble as Gabor wavelet basis function. In the proposed edge detection technique GeoEye's IKONOS satellite images corresponding to pre and post events have been first transformed to pattern maps (feature map) in which edges and background pixels have been classified into different classes. The edges have been extracted by using sparse components only, whereas non sparse components have been suppressed and treated as background.
机译:本文侧重于基于独立分量分析(ICA)的卫星图像的强大和灵活的边缘检测技术,以识别和主观分析日本地震2011年由于日本地震而导致的变化。 ICA已应用于卫星图像修补程序,以学习使用固定点FastICA算法的基础函数。由于大多数基本函数都是稀疏的,它们用作特征提取的图案模板。这些基本函数通常是局部的,带限制和定向的人类视觉系统(HVS),并类似于Gabor小波基函数。在所提出的边缘检测技术中,Geoeye的Ikonos卫星图像对应于预先和后事件的卫星图像已经首先转换为模式映射(特征图),其中边缘和背景像素已被分类为不同的类。通过仅使用稀疏组件来提取边缘,而非稀疏组件已被抑制并被视为背景。

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