A clustering-plane based energy optimization method for image segmentation

Xiaomin Xie, Tingting Wang, Bo Liu, Kui Li
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Abstract

A novel regional energy minimization model is proposed in this paper, which aims to find the optimal clustering planes for respective objects in the image domain. By using the distances from the pixels to the center planes and spatial location information, the model assigns the pixels to the appropriate categories. A soft membership function is introduced to estimate the score which describes the possibility that the pixel falls into the category. Further, the spatial information is employed to amend the membership function so as to enhance the noise robustness of the model. The parameters of the center planes are updated through the energy minimization, and constrained by the prior values as well. The proposed model has been conducted on the synthetic images and real images, quantitatively and qualitatively, to demonstrate its performance.
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一种基于聚类平面的能量优化图像分割方法
本文提出了一种新的区域能量最小化模型,该模型的目的是在图像域内寻找各个目标的最优聚类平面。该模型利用像素到中心平面的距离和空间位置信息,将像素分配到相应的类别。引入软隶属函数来估计描述像素落入类别可能性的分数。利用空间信息对隶属度函数进行修正,增强模型的噪声鲁棒性。中心平面的参数通过能量最小化进行更新,并受到先验值的约束。通过对合成图像和真实图像进行定量和定性分析,验证了该模型的性能。
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