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Features for Art Painting Classification Based on Vector Quantization of MPEG-7 Descriptors

机译:基于MPEG-7描述符矢量量化的艺术绘画分类特征

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An approach for extracting higher-level visual features for art painting classification based on MPEG-7 descriptors is presented in this paper. The MPEG-7 descriptors give a good presentation of different types of visual features, but are complex structures. This prevents their direct use into standard classification algorithms and thus requires specific processing. Our approach consists of the following steps: (1)the images are tiled into non-overlapping rectangles to capture more detailed information; (2) the tiles of the images are clustered for each MPEG-7 descriptor; (3) vector quantization is used to assign a unique value to each tile, which corresponds to the number of the cluster where the tile belongs to, in order to reduce the dimensionality of the data. Finally, the significance of the attributes and the importance of the underlying MPEG-7 descriptors for class prediction in this domain are analyzed.
机译:本文提出了一种基于MPEG-7描述符的艺术绘画分类的高级视觉特征提取方法。 MPEG-7描述符很好地呈现了不同类型的视觉特征,但结构复杂。这阻止了将它们直接用于标准分类算法,因此需要进行特殊处理。我们的方法包括以下步骤:(1)将图像平铺为不重叠的矩形以捕获更多详细信息; (2)为每个MPEG-7描述符聚类图像的图块; (3)矢量量化用于为每个图块分配一个唯一的值,该值对应于该图块所属的群集的数目,以减少数据的维数。最后,分析了属性的重要性以及底层MPEG-7描述符对于该领域中类别预测的重要性。

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