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计算感知特征用于纹理表示和检索。

Computational perceptual features for texture representation and retrieval.

机构信息

College of Computer and Information Sciences, King Saud University, Riyadh 11543, Kingdom of Saudi Arabia.

出版信息

IEEE Trans Image Process. 2011 Jan;20(1):236-46. doi: 10.1109/TIP.2010.2060345. Epub 2010 Jul 23.

Abstract

A perception-based approach to content-based image representation and retrieval is proposed in this paper. We consider textured images and propose to model their textural content by a set of features having a perceptual meaning and their application to content-based image retrieval. We present a new method to estimate a set of perceptual textural features, namely coarseness, directionality, contrast, and busyness. The proposed computational measures can be based upon two representations: the original images representation and the autocorrelation function (associated with original images) representation. The set of computational measures proposed is applied to content-based image retrieval on a large image data set, the well-known Brodatz database. Experimental results and benchmarking show interesting performance of our approach. First, the correspondence of the proposed computational measures to human judgments is shown using a psychometric method based upon the Spearman rank-correlation coefficient. Second, the application of the proposed computational measures in texture retrieval shows interesting results, especially when using results fusion returned by each of the two representations. Comparison is also given with related works and show excellent performance of our approach compared to related approaches on both sides: correspondence of the proposed computational measures with human judgments as well as the retrieval effectiveness.

摘要

本文提出了一种基于感知的基于内容的图像表示和检索方法。我们考虑纹理图像,并提出通过一组具有感知意义的特征来建模其纹理内容,并将其应用于基于内容的图像检索。我们提出了一种新的方法来估计一组感知纹理特征,即粗糙度、方向性、对比度和繁忙度。所提出的计算度量可以基于两种表示形式:原始图像表示和自相关函数(与原始图像相关联)表示。所提出的计算度量集应用于基于内容的大型图像数据集的图像检索,即著名的布罗达茨(Brodatz)数据库。实验结果和基准测试表明,我们的方法具有有趣的性能。首先,使用基于 Spearman 等级相关系数的心理测量方法,显示了所提出的计算度量与人的判断之间的对应关系。其次,在所提出的计算度量在纹理检索中的应用中,展示了有趣的结果,特别是在使用两种表示形式中的每一种返回的结果融合时。还与相关工作进行了比较,并表明与相关方法相比,我们的方法在两个方面都具有出色的性能:与人类判断的一致性以及检索的有效性。

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