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  • 标题:A Novel Approach for Coin Identification Using Eigenvalues of Covariance Matrix,hough Transform and Raster Scan Algorithms
  • 作者:J. Prakash, K. Rajesh
  • 期刊名称:International Journal of Computer Science
  • 出版年度:2009
  • 卷号:4
  • 期号:02
  • 出版社:World Enformatika Society
  • 摘要:

    In this paper we present a new method for coin
    identification. The proposed method adopts a hybrid scheme using
    Eigenvalues of covariance matrix, Circular Hough Transform (CHT)
    and Bresenham’s circle algorithm. The statistical and geometrical
    properties of the small and large Eigenvalues of the covariance
    matrix of a set of edge pixels over a connected region of support are
    explored for the purpose of circular object detection. Sparse matrix
    technique is used to perform CHT. Since sparse matrices squeeze
    zero elements and contain only a small number of non-zero elements,
    they provide an advantage of matrix storage space and computational
    time. Neighborhood suppression scheme is used to find the valid
    Hough peaks. The accurate position of the circumference pixels is
    identified using Raster scan algorithm which uses geometrical
    symmetry property. After finding circular objects, the proposed
    method uses the texture on the surface of the coins called texton,
    which are unique properties of coins, refers to the fundamental micro
    structure in generic natural images. This method has been tested on
    several real world images including coin and non-coin images. The
    performance is also evaluated based on the noise withstanding
    capability.a >

  • 关键词:Circular Hough Transform; Coin detection; Covariance matrix; Eigenvalues; Raster scan Algorithm; Texton
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