Generalized rough sets, entropy, and image ambiguity measures.

Debashis Sen, Sankar K Pal
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引用次数: 98

Abstract

Quantifying ambiguities in images using fuzzy set theory has been of utmost interest to researchers in the field of image processing. In this paper, we present the use of rough set theory and its certain generalizations for quantifying ambiguities in images and compare it to the use of fuzzy set theory. We propose classes of entropy measures based on rough set theory and its certain generalizations, and perform rigorous theoretical analysis to provide some properties which they satisfy. Grayness and spatial ambiguities in images are then quantified using the proposed entropy measures. We demonstrate the utility and effectiveness of the proposed entropy measures by considering some elementary image processing applications. We also propose a new measure called average image ambiguity in this context.

广义粗糙集,熵和图像模糊度量。
利用模糊集理论对图像中的模糊性进行量化一直是图像处理领域研究人员最感兴趣的问题。在本文中,我们提出了使用粗糙集理论及其某些推广来量化图像中的模糊性,并将其与模糊集理论的使用进行了比较。我们提出了基于粗糙集理论及其某些推广的熵测度类,并进行了严格的理论分析,以提供它们所满足的一些性质。然后使用所提出的熵度量对图像中的灰度和空间模糊性进行量化。我们通过考虑一些基本的图像处理应用来证明所提出的熵测度的实用性和有效性。在这种情况下,我们还提出了一种新的测量方法,称为平均图像模糊度。
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