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Image segmentation by combining the global and local properties

机译:通过结合全局和局部属性进行图像分割

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Image segmentation plays a fundamental role in many computer vision applications. It is challenging because of the vast variety of images involved and the diverse segmentation requirements in different applications. As a result, it remains an open problem after so many years of study by researchers all over the world. In this paper, we propose to segment the image by combing its global and local properties. The global properties of the image are characterized by the mean values of different pixel classes and the continuous boundary of the object or region. The local properties are characterized by the interactions of neighboring pixels and the image edge. The proposed approach consists of four basic parts corresponding to the global or local property of the image respectively: (1) The slope difference distribution that is used to compute the global mean values of different pixel classes; (2) Energy minimization to remove inhomogeneity based on Gibbs distribution that complies with local interactions of neighboring pixels; (3) The Canny operator that is used to detect the local edge of the object or the region; (4) The polynomial spline that is used to smooth the boundary of the object or the region. These four basic parts are applied one by one and each of them is indispensable for the achieved high accuracy. A large variety of images are used to validate the proposed approach and the results are favorable. (C) 2017 The Author(s). Published by Elsevier Ltd.
机译:图像分割在许多计算机视觉应用中都起着基本作用。由于涉及的图像种类繁多,并且在不同的应用程序中需要不同的分割要求,因此具有挑战性。结果,经过全世界研究人员多年的研究,这仍然是一个悬而未决的问题。在本文中,我们建议通过结合图像的全局和局部属性对图像进行分割。图像的全局属性由不同像素类别的平均值以及对象或区域的连续边界来表征。局部特性的特征在于相邻像素和图像边缘的相互作用。该方法由四个基本部分组成,分别对应于图像的全局或局部属性:(1)斜率差分布,用于计算不同像素类别的全局平均值; (2)基于吉布斯分布的能量最小化以消除不均匀性,吉布斯分布符合邻近像素的局部相互作用; (3)Canny运算符,用于检测对象或区域的局部边缘; (4)用于平滑对象或区域边界的多项式样条。这四个基本部分被一一应用,并且对于实现高精确度来说,它们都是必不可少的。大量的图像被用来验证所提出的方法,并且结果是令人满意的。 (C)2017作者。由Elsevier Ltd.发布

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