Fingerprint identification is one of the biometric identification techniques, which is of great significance for the improvement of the accuracy and reliability of the identification.. The uniqueness and permanence of the fingerprint make it use in information, public, finance, social management and so on.. This paper studies the algorithm and the realization of the fingerprint pattern recognition system, including the fingerprint image collection, the image preprocessing, the feature extraction and the feature matching.. Along with the fingerprint recognition speed and the accuracy enhancement, the fingerprint recognition will be in the society obtains the more and more widespread application. This paper summarizes the preprocessing of fingerprint pattern recognition, the field of fingerprint image and its computation.. Through the segmentation of the fingerprint image,Equalization, convergence, smoothness, enhancement, and the extraction of the fingerprint image skeleton, realize the feature extraction and comparison of the grain image and construct the fingerprint pattern recognition system.. The fingerprint pattern recognition of pre treated part comprises a fingerprint image distortion correction, fingerprint image field and calculation, the fingerprint image segmentation, fingerprint image equalization, fingerprint image convergence, fingerprint image smoothing, fingerprint image enhancement, fingerprint image binary and fingerprint image thinning. The distortion correction of the fingerprint image is firstly constructed by the natural model, then the physical model is constructed, and the distortion correction is carried out according to the abstract physical model..For the fingerprint image field and its computation, the fingerprint image field is finally calculated by the fingerprint image intensity field, the fingerprint gradient field and the fingerprint image direction field.. For the fingerprint image segmentation, the fingerprint image is segmented by the gray value distribution of the fingerprint image gray histogram.. For the fingerprint image equalization, the gray equilibrium conversion is taken for fingerprint image equalization.. For the convergence of the fingerprint image, the convergence of the convergent function of the divergence point of the fingerprint image is described by using the Gauss function.. For fingerprint image smoothing,The smoothing of the fingerprint image is achieved by the convolution of the fingerprint image and the template operator.. For the enhancement of the fingerprint image, this paper uses the method of Gabor filtering to enhance the fingerprint image.. For fingerprint image of fingerprint image skeleton extraction, for the binarization of fingerprint image and a fingerprint image thinning in two parts; for fingerprint image binarization, the approach taken is intelligent binary field analysis method; for the thinned fingerprint image, the algorithm used in this paper is the look-up table method
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