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Image retrieval based on non-uniform bins of color histogram and dual tree complex wavelet transform

机译:基于颜色直方图非均匀bin和对偶树复小波变换的图像检索

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摘要

Traditional Content-Based Image Retrieval (CBIR) systems were developed for retrieving similar kinds of images from a whole image database based on the given query image. In this paper, the authors have proposed a hierarchical approach for designing a CBIR scheme based on the color and texture features of an image. Initially, a color based approach is adopted and the intermediate results produced by using these color features is appropriate to discard a significant number of non-relevant images from the database. The intermediate database will be the input for the second stage. At this stage, a texture based approach is adopted for retrieving images from the intermediate database. The color features are extracted by computing the statistical parameters of non-uniform quantized histograms of HSV color space while a rotation invariant multi-resolution texture based approach is accomplished on value(V) component of HSV color space for extracting texture features. These texture features are extracted based on the principal texture direction and by taking the energies from various sub-bands of a dual tree complex wavelet transform (DT-CWT). Furthermore, the proposed scheme is suitable to handle mirror images during the retrieval process. The presented scheme has reduced the processing cost due to the consideration of a hierarchical approach. The proposed scheme is tested on the two well-known Corel-1K and GHIM-10K image databases respectively and satisfactory results were achieved in terms of precision, recall and F-score. The proposed scheme is compared with some other existing state of art CBIR schemes and the experimental results validate the improvement over other schemes in most of the instances.
机译:开发了传统的基于内容的图像检索(CBIR)系统,用于基于给定的查询图像从整个图像数据库中检索相似类型的图像。在本文中,作者提出了一种基于图像的颜色和纹理特征设计CBIR方案的分层方法。最初,采用基于颜色的方法,并且使用这些颜色特征产生的中间结果适合于从数据库中丢弃大量不相关的图像。中间数据库将作为第二阶段的输入。在这一阶段,采用基于纹理的方法从中间数据库中检索图像。通过计算HSV颜色空间的非均匀量化直方图的统计参数来提取颜色特征,同时在HSV颜色空间的值(V)分量上实现基于旋转不变多分辨率纹理的方法来提取纹理特征。这些纹理特征是根据主要纹理方向并通过从双树复数小波变换(DT-CWT)的各个子带中提取能量来提取的。此外,提出的方案适合于在检索过程中处理镜像。由于考虑了分级方法,所提出的方案降低了处理成本。分别在两个著名的Corel-1K和GHIM-10K图像数据库上对提出的方案进行了测试,在精度,召回率和F得分方面均取得了令人满意的结果。将拟议的方案与其他一些现有的现有CBIR方案进行了比较,实验结果验证了在大多数情况下相对于其他方案的改进。

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