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Feed-forward content based image retrieval using adaptive tetrolet transforms

机译:使用自适应Tetrolet变换的基于前馈内容的图像检索

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This paper proposes a new approach for content based image retrieval based on feed-forward architecture and Tetrolet transforms. The proposed method addresses the problems of accuracy and retrieval time of the retrieval system. The proposed retrieval system works in two phases: feature extraction and retrieval. The feature extraction phase extracts the texture, edge and color features in a sequence. The texture features are extracted using Tetrolet transform. This transform provides better texture analysis by considering the local geometry of the image. Edge orientation histogram is used for retrieving the edge feature while color histogram is used for extracting the color features. Further retrieval phase retrieves the images in the feed-forward manner. At each stage, the number of images for next stage is reduced by filtering out irrelevant images. The Euclidean distance is used to measure the distance between the query and database images at each stage. The experimental results on COREL- 1 K and CIFAR - 10 benchmark databases show that the proposed system performs better in terms of the accuracy and retrieval time in comparison to the state-of-the-art methods.
机译:本文提出了一种基于前馈架构和Tetrolet变换的基于内容的图像检索新方法。所提出的方法解决了检索系统的准确性和检索时间的问题。所提出的检索系统分两个阶段工作:特征提取和检索。特征提取阶段按顺序提取纹理,边缘和颜色特征。使用Tetrolet变换提取纹理特征。通过考虑图像的局部几何形状,此变换可提供更好的纹理分析。边缘方向直方图用于检索边缘特征,而颜色直方图用于提取颜色特征。进一步的检索阶段以前馈的方式检索图像。在每个阶段,通过过滤掉不相关的图像来减少下一阶段的图像数量。欧几里得距离用于测量每个阶段查询和数据库图像之间的距离。在COREL-1 K和CIFAR-10基准数据库上的实验结果表明,与最新方法相比,该系统在准确性和检索时间方面表现更好。

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