基于全局表示和多级搜索的有效的基于内容的图像检索系统

N. W. U. D. Chathurani, S. Geva, V. Chandran, V. Cynthujah
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引用次数: 5

摘要

使用视觉查询作为搜索参数从多样化的集合中检索相关图像是一个具有挑战性和重要的开放性问题。在本文中,作者提出了一个简单而有效的基于内容的图像检索系统的设计和实现。它使用颜色、纹理和形状特征。搜索是多层次的,有三个主要的顺次搜索步骤。该系统的独特之处在于它在每一步都考虑一个特征,并以多级方式使用前一步的结果作为下一步的输入,而在过去的方法中,对于典型的CBIR系统的单级搜索,所有特征都是一次融合的。所提出的方法简单,易于采用。使用两个图像分类基准数据集对所提方法的检索质量进行了评估。与已有文献相比,该系统在提高检索质量方面取得了良好的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An effective Content Based Image Retrieval system based on global representation and multi-level searching
Retrieving relevant images from a diversified collection using visual queries as search argument is a challenging and important open problem. In this paper the authors present the design and implementation of a simple yet effective Content-Based Image Retrieval (CBIR) system. It uses the colour, texture and shape features. The searching is multi-level with three main consequent searching steps. This proposed system is unique as it considers one feature at each step and uses the results of the prior step as the input for the next step in multi-level manner whereas in past methods all the features are fused at once for the single-level search of a typical CBIR system. The proposed approach is simple and easy to adopt. The retrieval quality of the proposed approach is evaluated using two benchmark datasets for image classification. The proposed system shows good results in terms of improvement in retrieval quality, in comparison with the literature.
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