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[Author] Deokmin HAAM(2hit)

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  • An Efficient Filtering Method for Scalable Face Image Retrieval

    Deokmin HAAM  Hyeon-Gyu KIM  Myoung-Ho KIM  

     
    LETTER-Image Recognition, Computer Vision

      Pubricized:
    2014/12/11
      Vol:
    E98-D No:3
      Page(s):
    733-736

    This paper presents a filtering method for efficient face image retrieval over large volume of face databases. The proposed method employs a new face image descriptor, called a cell-orientation vector (COV). It has a simple form: a 72-dimensional vector of integers from 0 to 8. Despite of its simplicity, it achieves high accuracy and efficiency. Our experimental results show that the proposed method based on COVs provides better performance than a recent approach based on identity-based quantization in terms of both accuracy and efficiency.

  • Efficient Discovery of Highly Interrelated Users in One-Way Communications

    Jihwan SONG  Deokmin HAAM  Yoon-Joon LEE  Myoung-Ho KIM  

     
    LETTER-Artificial Intelligence, Data Mining

      Vol:
    E94-D No:3
      Page(s):
    714-717

    In this paper, we introduce a new sequential pattern, the Interactive User Sequence Pattern (IUSP). This pattern is useful for grouping highly interrelated users in one-way communications such as e-mail, SMS, etc., especially when the communications include many spam users. Also, we propose an efficient algorithm for discovering IUSPs from massive one-way communication logs containing only the following information: senders, receivers, and dates and times. Even though there is a difficulty in that our new sequential pattern violates the Apriori property, the proposed algorithm shows excellent processing performance and low storage cost in experiments on a real dataset.