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An efficient content-based image retrieval system integrating wavelet-based image sub-blocks with dominant colors and texture analysis

机译:一个高效的基于内容的图像检索系统,将基于小波的图像子块与主色和纹理分析相结合

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There is a great need of developing efficient content-based image retrieval systems (CBIR) because of the availability of large image databases. Three new image retrieval systems to retrieve the images using color and texture features are proposed. The image is divided into equal sized non-overlapping tiles. The discrete wavelet transform, HSV color feature, cumulative color histogram, dominant color descriptor (DCD) and Gray level co-occurrence matrix (GLCM) are applied to image partitions. An integrated matching scheme based on Most Similar Highest Priority (MSHP) principle is used to compare the query and database images. The adjacency matrix of a bipartite graph is formed using the sub-blocks of query and images in the database. The proposed techniques indeed outperform other retrieval schemes in terms of average precision and average recall. The developed techniques are able to perform scale, translation, and rotation invariant matching between images. In the future, we need to reduce the semantic gap between the local features and the high-level user semantics to achieve higher accuracy.
机译:由于大型图像数据库的可用性,迫切需要开发高效的基于内容的图像检索系统(CBIR)。提出了三种使用颜色和纹理特征来检索图像的新图像检索系统。图像分为大小相等的非重叠图块。离散小波变换,HSV颜色特征,累积颜色直方图,主色描述符(DCD)和灰度共生矩阵(GLCM)被应用于图像分区。基于最相似最高优先级(MSHP)原理的集成匹配方案用于比较查询图像和数据库图像。使用数据库中查询和图像的子块来形成二部图的邻接矩阵。在平均精度和平均查全率方面,提出的技术确实优于其他检索方案。所开发的技术能够在图像之间执行缩放,平移和旋转不变匹配。将来,我们需要缩小局部特征和高级用户语义之间的语义鸿沟,以实现更高的准确性。

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