Color uniformity descriptor: An efficient contextual color representation for image indexing and retrieval

被引:10
作者
Reta, Carolina [1 ]
Cantoral-Ceballos, Jose A. [2 ]
Solis-Moreno, Ismael [3 ]
Gonzalez, Jesus A. [4 ]
Alvarez-Vargas, Rogelio [2 ]
Delgadillo-Checa, Nery [2 ]
机构
[1] CONACYT CIATEQ AC, Dept IT Control & Elect, Av Diesel Nacl 1 Ciudad Sahagun, Queretaro 43990, Hidalgo, Mexico
[2] CIA TEQ AC, Dept IT Control & Elect, Av Manantiales 23-A,Parque Ind Bernardo Quintana, El Marques 76246, Queretaro, Mexico
[3] IBM Corp, Mexico Software Lab, Carretera Castillo Km 2-2, El Salto 45686, Jalisco, Mexico
[4] Natl Inst Astrophys Opt & Elect, Dept Comp Sci, Luis Enrique Erro 1, Puebla 72840, Mexico
关键词
Image retrieval; Image representation; Contextual features; Color uniformity descriptor; Lab color space; SCALE; MANIFOLD; RANKING;
D O I
10.1016/j.jvcir.2018.04.009
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Color is a rich source of visual information for the effective characterization of image content. The recognition of texture or shape elements in images is strongly associated with the analysis of the image color layout. This paper presents a contextual color descriptor designed especially to be applied to CBIR tasks in heterogeneous image databases. The proposed color uniformity descriptor (CUD) clusters perceptually similar image color regions according to the uniformity analysis of their neighbor pixels. CUD produces vast color image details with a thin histogram, whilst preserving the balance between uniqueness and robustness. CUD is computationally efficient and can achieve high precision and throughput rates when used in CBIR. Experimental results show that CUD performs comparably against local features and multiple features state-of-the-art approaches that require more complex data manipulation. Results demonstrate that CUD provides strong image discrimination even in the presence of significant content variation.
引用
收藏
页码:39 / 50
页数:12
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