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Texture classification for content-based image retrieval

机译:基于内容的图像检索的纹理分类

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An original approach to texture-based classification of regions, for image indexing and retrieval, is presented. The system addresses automatic macro-textured ROI's detection, and classification: we focus our attention on those objects that can be characterized by a texture as a whole, like trees, flowers, walls, clouds, and so on. The proposed architecture is based on the computation of the λ vector from each selected region, and classification of this feature by means of a pool of suitably trained Support Vector Machines (SVM's). This approach is an extension of the one previously developed by some of the authors to classify image regions on the basis of the geometrical shape of the objects they contain. Theoretical remarks, motivation of the approach, experimental setup, and the first satisfactory results on natural scenes are reported.
机译:提出了一种原始的地区纹理分类的方法,用于图像索引和检索。该系统解决了自动宏观纹理ROI的检测,以及分类:我们将注意力集中在那些可通过整体纹理的物体上的注意力,如树木,花卉,墙壁,云等。所提出的架构基于从每个所选区域的λ向量的计算,以及通过适当训练的支持向量机(SVM)的池的池来分类该特征。这种方法是先前由某些作者开发的方法的扩展,以基于它们包含的对象的几何形状对图像区域进行分类。据说理论言论,探讨了方法,实验设置和自然场景的第一个令人满意的结果。

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