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Local Tetra Patterns: A New Feature Descriptor for Content-Based Image Retrieval

机译:本地Tetra模式:基于内容的图像检索的新功能描述符

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摘要

In this paper, we propose a novel image indexing and retrieval algorithm using local tetra patterns (LTrPs) for content-based image retrieval (CBIR). The standard local binary pattern (LBP) and local ternary pattern (LTP) encode the relationship between the referenced pixel and its surrounding neighbors by computing gray-level difference. The proposed method encodes the relationship between the referenced pixel and its neighbors, based on the directions that are calculated using the first-order derivatives in vertical and horizontal directions. In addition, we propose a generic strategy to compute nth-order LTrP using (n - 1)th-order horizontal and vertical derivatives for efficient CBIR and analyze the effectiveness of our proposed algorithm by combining it with the Gabor transform. The performance of the proposed method is compared with the LBP, the local derivative patterns, and the LTP based on the results obtained using benchmark image databases viz., Corel 1000 database (DB1), Brodatz texture database (DB2), and MIT VisTex database (DB3). Performance analysis shows that the proposed method improves the retrieval result from 70.34%/44.9% to 75.9%/48.7% in terms of average precision/average recall on database DB1, and from 79.97% to 85.30% and 82.23% to 90.02% in terms of average retrieval rate on databases DB2 and DB3, respectively, as compared with the standard LBP.
机译:在本文中,我们提出了一种新的基于本地四模式(LTrPs)的图像索引和检索算法,用于基于内容的图像检索(CBIR)。标准局部二进制模式(LBP)和局部三进制模式(LTP)通过计算灰度差异来编码参考像素与其周围邻居之间的关系。所提出的方法基于使用垂直和水平方向上的一阶导数计算出的方向,对参考像素与其相邻像素之间的关系进行编码。此外,我们提出了一种通用策略,使用第(n-1)个水平和垂直导数来计算n阶LTrP,以实现有效的CBIR,并结合Gabor变换分析了该算法的有效性。基于使用基准图像数据库(即Corel 1000数据库(DB1),Brodatz纹理数据库(DB2)和MIT VisTex数据库)获得的结果,将所提出方法的性能与LBP,局部导数模式和LTP进行了比较。 (DB3)。性能分析表明,该方法将数据库DB1的平均精度/平均召回率从70.34%/ 44.9%提高到75.9%/ 48.7%,从79.97%提高到85.30%,从82.23%提高到90.02%与标准LBP相比,分别对数据库DB2和DB3的平均检索率的影响。

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