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A FAST TWO-STAGE CONTENT-BASED IMAGE RETRIEVAL APPROACH IN THE DCT DOMAIN

机译:DCT域中基于两阶段内容的快速图像检索方法

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摘要

In this paper, a two-stage content-based image retrieval (CBIR) approach is proposed to improve the retrieval performance. To develop a general retrieval scheme which is less dependent on domain-specific knowledge, the discrete cosine transform (DCT) is employed as a feature extraction method. In establishing the database, the DC coefficients of Y, U and V components are quantized such that the feature space is partitioned into a finite number of grids, each of which is mapped to a grid code (GC). When querying an image, at coarse classification stage, the grid-based classification (GBC) and the distance threshold pruning (DTP) serve as a filter to remove those candidates with widely distinct features. At the fine classification stage, only the remaining candidates need to be computed for the detailed similarity comparison. The experimental results show that both high efficacy and high efficiency can be achieved simultaneously using the proposed two-stage approach.
机译:本文提出了一种基于内容的两阶段图像检索(CBIR)方法,以提高检索性能。为了开发一种较少依赖领域特定知识的通用检索方案,离散余弦变换(DCT)被用作特征提取方法。在建立数据库时,对Y,U和V分量的DC系数进行量化,以便将特征空间划分为有限数量的网格,每个网格都映射到一个网格代码(GC)。查询图像时,在粗分类阶段,基于网格的分类(GBC)和距离阈值修剪(DTP)用作过滤器,以删除具有广泛不同特征的那些候选对象。在精细分类阶段,仅需计算其余候选者即可进行详细的相似度比较。实验结果表明,使用所提出的两阶段方法可以同时实现高效率和高效率。

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