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A model-based method for the computation of fingerprints' orientation field

机译:基于模型的指纹方向场计算方法

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摘要

As a global feature of fingerprints, the orientation field is very important for automatic fingerprint recognition. Many algorithms have been proposed for orientation field estimation, but their results are unsatisfactory, especially for poor quality fingerprint images. In this paper, a model-based method for the computation of orientation field is proposed. First a combination model is established for the representation of the orientation field by considering its smoothness except for several singular points, in which a polynomial model is used to describe the orientation field globally and a point-charge model is taken to improve the accuracy locally at each singular point. When the coarse field is computed by using the gradient-based algorithm, a further result can be gained by using the model for a weighted approximation. Due to the global approximation, this model-based orientation field estimation algorithm has a robust performance on different fingerprint images. A further experiment shows that the performance of a whole fingerprint recognition system can be improved by applying this algorithm instead of previous orientation estimation methods.
机译:作为指纹的全局特征,方向字段对于自动指纹识别非常重要。已经提出了许多用于定向场估计的算法,但是其结果并不令人满意,尤其是对于质量较差的指纹图像而言。本文提出了一种基于模型的取向场计算方法。首先,通过考虑方向场的平滑性(除了几个奇异点),建立一个表示方向场的组合模型,其中使用多项式模型全局描述方向场,并采用点电荷模型来提高定位场的局部精度。每个奇点。当使用基于梯度的算法来计算粗略字段时,可以通过使用模型进行加权近似来获得进一步的结果。由于全局逼近,这种基于模型的方向场估计算法在不同的指纹图像上具有强大的性能。进一步的实验表明,通过应用该算法代替以前的方向估计方法,可以提高整个指纹识别系统的性能。

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