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A thresholding method based on interval-valued intuitionistic fuzzy sets: an application to image segmentation

机译:基于区间直觉模糊集的阈值化方法:在图像分割中的应用

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This paper proposes a new fuzzy approach for the segmentation of images. L-interval-valued intuitionistic fuzzy sets (IVIFSs) are constructed from two L-fuzzy sets that corresponds to the foreground (object) and the background of an image. Here, L denotes the number of gray levels in the image. The length of the membership interval of IVIFS quantifies the influence of the ignorance in the construction of the membership function. Threshold for an image is chosen by finding an IVIFS with least entropy. Contributions also include a comparative study with ten other image segmentation techniques. The results obtained by each method have been systematically evaluated using well-known measures for judging the segmentation quality. The proposed method has globally shown better results in all these segmentation quality measures. Experiments also show that the results acquired from the proposed method are highly correlated to the ground truth images.
机译:本文提出了一种新的模糊图像分割方法。 L区间值直觉模糊集(IVIFS)由对应于图像前景(对象)和背景的两个L模糊集构造而成。在此,L表示图像中的灰度级的数量。 IVIFS成员资格间隔的长度量化了无知对成员资格函数构造的影响。通过找到熵最小的IVIFS来选择图像的阈值。贡献还包括与十种其他图像分割技术的比较研究。每种方法获得的结果已使用众所周知的判断分割质量的方法进行了系统地评估。所提出的方法在所有这些分割质量度量中均显示出更好的结果。实验还表明,该方法获得的结果与地面真实图像高度相关。

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