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Indexing and encoding based image feature representation with bin overlapped similarity measure for CBIR applications

机译:基于索引和编码的图像特征表示,具有CBIR应用中的bin重叠相似性度量

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In Content Based Image Retrieval (CBIR) system, the exhaustive search for a given query image to find the relevant images in the database are non-scalable. In this paper, we propose indexing, coding technique and similarity measure to address the above mentioned problem. We consider the color histogram of the image and its bin values are analyzed to understand the color information in the image. The histogram dimension is reduced by removing trivial bins and only those bins that represent color information significantly are considered. Based on the dimensions of the histogram, it is clustered and indexed. The Golomb-Rice (GR) coding is used to encode the indexed histograms. The Bin Overlapped Similarity Measure (BOSM) is proposed to compute the distance values between query and database image histograms. The performance of proposed approach is evaluated on benchmark datasets and found that the performance of the proposed approach is encouraging. (C) 2016 Elsevier Inc. All rights reserved.
机译:在基于内容的图像检索(CBIR)系统中,穷举搜索给定查询图像以在数据库中找到相关图像是不可缩放的。在本文中,我们提出了索引,编码技术和相似性度量来解决上述问题。我们考虑图像的颜色直方图,并对其bin值进行分析,以了解图像中的颜色信息。直方图的尺寸通过删除琐碎的分箱来减少,仅考虑那些代表颜色信息的分箱。基于直方图的维,对其进行聚类和索引。 Golomb-Rice(GR)编码用于编码索引直方图。提出了Bin重叠相似性度量(BOSM)以计算查询和数据库图像直方图之间的距离值。在基准数据集上评估了所提出方法的性能,发现所提出方法的性能令人鼓舞。 (C)2016 Elsevier Inc.保留所有权利。

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