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首页> 外文期刊>Indian Journal of Computer Science and Engineering >PERCEPTUAL RESEMBLANCE OF FACIAL IMAGES: A NEAR SET APPROACH
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PERCEPTUAL RESEMBLANCE OF FACIAL IMAGES: A NEAR SET APPROACH

机译:面部图像的感知替代:一种近距离的方法

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In this paper, we introduce a near set approach to image analysis. Near sets result from generalization of rough set theory. One set X is near another set Y to the extent that the description of at least one of the objects in X matches the description of at least one of the objects in Y. Near set Evaluation And Recognition (NEAR) system is used to measure the degree of resemblance between facial images. The goal of the NEAR system is to extract perceptual information from images using near set theory, which provides a framework for measuring the perceptual nearness of objects. In this work, we have used images from Japanese Female Facial Expression (JAFFE) database. The images were first converted into Local Binary Patterns (LBP) images and then divided into non-overlapping blocks. The degree of nearness of histograms of all the blocks of one image is measured with the corresponding blocks of another image by using NEAR system.
机译:在本文中,我们介绍了一种图像分析的近集方法。近集是粗糙集理论的推广。一组X接近另一组Y,其程度是X中至少一个对象的描述与Y中至少一个对象的描述相匹配。使用近集评估和识别(NEAR)系统来测量面部图像之间的相似程度。 NEAR系统的目标是使用近似集理论从图像中提取感知信息,该理论提供了一个测量对象感知接近度的框架。在这项工作中,我们使用了来自日本女性面部表情(JAFFE)数据库的图像。图像首先被转换为本地二进制模式(LBP)图像,然后被划分为非重叠块。通过使用NEAR系统,可以将一个图像的所有块的直方图与另一图像的相应块的接近程度进行测量。

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