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Rough-fuzzy set approach for color and texture based image segmentation

机译:基于纹理图像分割的粗糙模糊集方法

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Image segmentation is one of the most attractive problems in image processing. In image segmentation how to extract useful features from image has become crucial. However, color feature or texture feature, which are both wildly used features, could not process segmentation problem alone very well, especially when images are complex. We adopt a rough-fuzzy set approach, which can properly process high dimensionality, for image segmentation considering both color and texture features. This approach firstly constructs a structure named fuzzy data cube, whose attributes are composed of the fuzzy sets associated with image features. The fuzzy data cube, which can be two-dimension or high-dimension, is as the basic data structure in this method. A definition of the membership function of similarity relation based rough-fuzzy set is introduced as well as the definition of dependency function to evaluate the importance of an attribute for image segmentation. Then we used the rough-fuzzy set to discover the similarity set in fuzzy data cube to obtain the segmentation result. Experiments on mosaic and natural images are presented to demonstrate the effectiveness of the proposed method.
机译:图像分割是图像处理中最吸引人的问题之一。在图像分割中,如何从图像中提取有用的功能已经变得至关重要。但是,颜色特征或纹理功能,这两个都是非常使用的功能,不能很好地处理分割问题,特别是当图像复杂时。我们采用粗略模糊的套装方法,可以适当地处理高维度,用于考虑颜色和纹理特征的图像分割。该方法首先构造一个名为模糊数据多维数据集的结构,其属性由与图像特征相关联的模糊集组成。模糊数据多维数据集可以是两维或高维度,是此方法中的基本数据结构。介绍了基于相似性关系的粗略模糊集的隶属函数的定义以及依赖关系的定义,以评估图像分割的属性的重要性。然后我们使用粗略模糊集来发现模糊数据多维数据集中设置的相似度,以获得分段结果。提出了关于马赛克和自然图像的实验,以证明该方法的有效性。

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