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Content Based Image Retrieval Using Bag-Of-Regions

机译:使用区域包的基于内容的图像检索

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In this work we introduce the Bag-Of-Regions model, inspired from the Bag-Of-Visual-Words. Instead of clustering local image patches represented by SIFT or related descriptors, low level descriptors are extracted and clustered from image regions, as given by a segmentation algorithm. The Bag-Of-Region model allows to define visual dictionaries that capture extra information with respect to Bag-Of-Visual-Words. Combined description schemes and ad-hoc incremental clustering for visual dictionnaries are proposed. The results on public datasets are promising.
机译:在这项工作中,我们介绍了Bag-Of-Regions(袋区域)模型,该模型的灵感来自于Bag-Of-Visual-Words。代替聚类由SIFT或相关描述符表示的局部图像补丁,从分割区域给出的图像区域中提取并聚类低级描述符。 Bag-Of-Region(区域包)模型允许定义可视词典,以捕获有关可视包词的额外信息。提出了视觉词典的组合描述方案和临时增量聚类。公开数据集上的结果很有希望。

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