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首页> 外文期刊>Journal of visual communication & image representation >Structured representations in a content based image retrieval context
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Structured representations in a content based image retrieval context

机译:基于内容的图像检索上下文中的结构化表示

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Here, we propose an automatic system to annotate and retrieve images. We assume that regions in an image can be described using a vocabulary of blobs. Blobs are generated from image features using clustering. Features are locally extracted on regions to capture Color, Texture and Shape information. Regions are processed by an efficient segmentation algorithm. Images are structured into a region adjacency graph to consider spatial relationships between regions. This representation is used to perform a similarity search into an image set. Hence, the user can express his need by giving a query image, and thereafter receiving as a result all similar images. Our graph based approach is benchmarked to conventional Bag of Words methods. Results tend to reveal a good behavior in classification of our graph based solution on two publicly available databases. Experiments illustrate that a structural approach requires a smaller vocabulary size to reach its best performance.
机译:在这里,我们提出了一个自动系统来注释和检索图像。我们假设可以使用斑点词汇描述图像中的区域。使用聚类从图像特征生成斑点。特征是在区域上本地提取的,以捕获颜色,纹理和形状信息。通过有效的分割算法处理区域。图像被构造成区域邻接图,以考虑区域之间的空间关系。该表示用于对图像集执行相似度搜索。因此,用户可以通过提供查询图像并随后接收所有相似图像来表达他的需求。我们基于图的方法以常规的单词袋方法为基准。结果倾向于显示在两个公开可用的数据库上基于图的解决方案分类中的良好行为。实验表明,结构化方法需要较小的词汇量才能达到最佳性能。

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