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Two-dimensional extension of variance-based thresholding for image segmentation

机译:基于方差的阈值分割的二维扩展

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摘要

Variance-based thresholding method is a very effective technology for image segmentation. However, its performance is limited in traditional one-dimensional and two-dimensional scheme. In this paper, a novel two-dimensional variance thresholding scheme to improve image segmentation performance is proposed. The two-dimensional histogram of the original and local average image is projected to one-dimensional space in the proposed scheme firstly, and then the variance-based criterion is constructed for threshold selection. The experimental results on bi-level and multilevel thresholding for synthetic and real-world images demonstrate the success of the proposed image thresholding scheme, as compared with the Otsu method, the two-dimensional Otsu method and the minimum class variance thresholding method.
机译:基于方差的阈值化方法是一种非常有效的图像分割技术。但是,其性能在传统的一维和二维方案中受到限制。本文提出了一种新颖的二维方差阈值化方案,以提高图像分割性能。该方案首先将原始图像和局部平均图像的二维直方图投影到一维空间,然后构造基于方差的阈值选择准则。在合成和真实世界图像的双层和多级阈值处理方面的实验结果证明,与Otsu方法,二维Otsu方法和最小类方差阈值方法相比,所提出的图像阈值方案是成功的。

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