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A Method for Content-Based Image Retrieval with a Two-Stage Feature Matching

机译:一种基于内容的图像检索方法,具有两阶段特征匹配

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Content-based image retrieval is an active area of research where image content is used to guide the search of relevant images from a dataset. Given a query image, the images in the dataset are ranked in terms of their scores of similarity to this image based on their visual appearance. Many existing algorithms are based on either single feature or the fusion of multi-features with a one-step search method, which may lead to undesirable results due to the mismatch between low-level features and high-level semantics. To address this issue, we propose a two-stage sequential search algorithm where the color feature, represented by a color histogram in the HSV space, is used to form an image set containing images of similar color distributions to that of the query image, then a second stage of search is performed via the matching of feature points, in terms of discrete wavelet transform (DWT), and the scale invariant feature transform (SIFT) feature, extracted from a low-frequency subgraph. Experiments are performed on the ZuBuD dataset and UKBench dataset. Compared to some state-of-the-art algorithms, the proposed algorithm gives higher precision score.
机译:基于内容的图像检索是一种有效的研究区域,其中图像内容用于指导来自数据集的相关图像的搜索。给定查询图像,基于其视觉外观,数据集中的图像以其相似性的分数。许多现有算法基于单个特征或具有一步搜索方法的多个特征的融合,这可能导致由于低级功能和高级语义之间的不匹配而导致不良导致。为了解决这个问题,我们提出了一个两阶段顺序搜索算法,其中由HSV空间中的颜色直方图表示的颜色特征,用于形成包含与查询图像类似颜色分布的图像的图像集。就从低频子图提取的离散小波变换(DWT)和比例不变特征变换(SIFT)特征而言,通过特征点的匹配来执行第二阶段的搜索阶段。在Zubud数据集和UKBENCH数据集上执行实验。与某些最先进的算法相比,所提出的算法提供更高的精度得分。

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