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[Author] Kazuki KONDO(1hit)

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  • Color Image Classification Using Block Matching and Learning

    Kazuki KONDO  Seiji HOTTA  

     
    LETTER-Pattern Recognition

      Vol:
    E92-D No:7
      Page(s):
    1484-1487

    In this paper, we propose block matching and learning for color image classification. In our method, training images are partitioned into small blocks. Given a test image, it is also partitioned into small blocks, and mean-blocks corresponding to each test block are calculated with neighbor training blocks. Our method classifies a test image into the class that has the shortest total sum of distances between mean blocks and test ones. We also propose a learning method for reducing memory requirement. Experimental results show that our classification outperforms other classifiers such as support vector machine with bag of keypoints.