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Beyond the Euclidean distance: Creating effective visual codebooks using the Histogram Intersection Kernel

机译:超越欧几里得距离:使用直方图相交核创建有效的视觉代码本

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Common visual codebook generation methods used in a Bag of Visual words model, e.g. k-means or Gaussian Mixture Model, use the Euclidean distance to cluster features into visual code words. However, most popular visual descriptors are histograms of image measurements. It has been shown that the Histogram Intersection Kernel (HIK) is more effective than the Euclidean distance in supervised learning tasks with histogram features. In this paper, we demonstrate that HIK can also be used in an unsupervised manner to significantly improve the generation of visual codebooks. We propose a histogram kernel k-means algorithm which is easy to implement and runs almost as fast as k-means. The HIK codebook has consistently higher recognition accuracy over k-means codebooks by 2–4%. In addition, we propose a one-class SVM formulation to create more effective visual code words which can achieve even higher accuracy. The proposed method has established new state-of-the-art performance numbers for 3 popular benchmark datasets on object and scene recognition. In addition, we show that the standard k-median clustering method can be used for visual codebook generation and can act as a compromise between HIK and k-means approaches.
机译:在“视觉袋”单词模型中使用的常见视觉代码簿生成方法,例如k均值或高斯混合模型,使用欧几里得距离将要素聚类为可视代码字。但是,最流行的视觉描述符是图像测量的直方图。研究表明,在具有直方图特征的监督学习任务中,直方图相交核(HIK)比欧几里得距离更有效。在本文中,我们证明了HIK也可以以无监督的方式使用,以显着改善可视代码簿的生成。我们提出了一种直方图核k均值算法,该算法易于实现,并且运行速度几乎与k均值相同。与k-means码本相比,HIK码本的识别精度始终高出2-4%。此外,我们提出了一种一类SVM公式来创建更有效的视觉代码字,从而可以实现更高的准确性。所提出的方法已经为3种流行的基准数据集建立了关于对象和场景识别的最新技术性能数字。此外,我们证明了标准的k中值聚类方法可用于可视化代码本生成,并可作为HIK和k均值方法之间的折衷。

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