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PW-COG: An Effective Texture Descriptor for VHR Satellite Imagery Using a Pointwise Approach on Covariance Matrix of Oriented Gradients

机译:PW-COG:VHR卫星图像的有效纹理描述符,使用定向梯度协方差矩阵的逐点方法

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摘要

In this paper, a novel algorithm for textural feature description in very high resolution (VHR) satellite imagery is developed. It is based on a pointwise (PW) approach on the feature covariance matrix. The main motivation of this work is to construct the covariance matrix of oriented gradients (COG) using a nondense approach based on characteristic points (i.e., keypoints) extracted from the image. The proposed descriptor, which is named PW-COG, is expected to be effective when applied to VHR images. First, a COG-based descriptor is capable of not only capturing both radiometric and local geometric information (given by gradient features) from the image but also encoding their joint distribution and correlation, which are effectively relevant for texture characterization and discrimination. Second, by employing a keypoint-based approach, the proposed method is able to deal with large amount of VHR image data, since we do not take into consideration all pixels of the image, without requiring the stationarity hypothesis. In order to demonstrate the effectiveness of the proposed descriptor, texture-based image classification is carried out. Experimental study on both texture database and VHR satellite images using the proposed algorithm provides very competitive results, in terms of texture discrimination and algorithm complexity, compared to reference methods.
机译:本文提出了一种新的高分辨率(VHR)卫星图像纹理特征描述算法。它基于特征协方差矩阵的逐点(PW)方法。这项工作的主要动机是基于图像中提取的特征点(即关键点),使用非密集方法构造定向梯度的协方差矩阵。拟议的描述符(称为PW-COG)在应用于VHR图像时有望有效。首先,基于COG的描述符不仅能够从图像中捕获辐射和局部几何信息(由梯度特征提供),还能够对它们的联合分布和相关性进行编码,这对于纹理表征和辨别是有效的。其次,通过采用基于关键点的方法,该方法能够处理大量VHR图像数据,因为我们不需要考虑图像的所有像素,而无需平稳性假设。为了证明所提出的描述符的有效性,进行了基于纹理的图像分类。与参考方法相比,使用该算法对纹理数据库和VHR卫星图像进行的实验研究在纹理识别和算法复杂性方面提供了非常有竞争力的结果。

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