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Chinese traditional Visual Cultural Symbols recognition based on SPM muti-feature extraction

机译:基于SPM多特征提取的中国传统视觉文化符号识别

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Globalization is a historic chance for China development. Moreover, Chinese traditional Visual Cultural Symbols (VCS) is a great tag of China. Image is a carrier of VCS. With the help of machine learning, we can recognize these VCS among numerous images very well. In this paper we propose combining with several features such as SIFT, HOG, RGB, LBP to describe an image and coding these features into higher dimensional vectors. Next, the coded vectors are pooled together. Besides, we also make full use of Bag-of-Words (BOW) and Spatial Pyramid Matching (SPM) theory in order to obtain a more ideal recognition. Experiments show that it's really a feasible approach.
机译:全球化是中国发展的历史性机遇。而且,中国传统视觉文化符号(VCS)是中国的一个伟大标记。图像是VCS的载体。借助机器学习,我们可以很好地识别大量图像中的这些VCS。在本文中,我们提出结合SIFT,HOG,RGB,LBP等多种特征来描述图像并将这些特征编码为高维向量。接下来,将编码矢量合并在一起。此外,我们还充分利用了词袋(BOW)和空间金字塔匹配(SPM)理论,以获得更理想的识别。实验表明,这确实是一种可行的方法。

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