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首页> 外文期刊>EURASIP journal on applied signal processing >RIDGE DISTANCE ESTIMATION IN FINGERPRINT IMAGES: ALGORITHM AND PERFORMANCE EVALUATION
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RIDGE DISTANCE ESTIMATION IN FINGERPRINT IMAGES: ALGORITHM AND PERFORMANCE EVALUATION

机译:指纹图像的脊距估计:算法和性能评估

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摘要

It is important to estimate the ridge distance accurately, an intrinsic texture property of a fingerprint image. Up to now, only several articles have touched directly upon ridge distance estimation. Little has been published providing detailed evaluation of methods for ridge distance estimation, in particular, the traditional spectral analysis method applied in the frequency field. In this paper, a novel method on nonoverlap blocks, called the statistical method, is presented to estimate the ridge distance. Direct estimation ratio (DER) and estimation accuracy (EA) are defined and used as parameters along with time consumption (TC) to evaluate performance of these two methods for ridge distance estimation. Based on comparison of performances of these two methods, a third hybrid method is developed to combine the merits of both methods. Experimental results indicate that DER is 44.7%, 63.8%, and 80.6%; EA is 84%, 93%, and 91%; and TC is 0.42, 0.31, and 0.34 seconds, with the spectral analysis method, statistical method, and hybrid method, respectively.
机译:重要的是准确估计脊距,这是指纹图像的固有纹理属性。到目前为止,只有几篇文章直接涉及到岭距估计。很少有文献提供对脊距估计方法的详细评估,特别是在频率场中应用的传统频谱分析方法。在本文中,提出了一种新的非重叠块方法,称为统计方法,用于估计岭距离。定义了直接估计比率(DER)和估计精度(EA),并将其与时间消耗(TC)一起用作参数,以评估这两种方法进行岭距离估计的性能。在比较这两种方法的性能的基础上,开发了第三种混合方法以结合两种方法的优点。实验结果表明,DER为44.7%,63.8%和80.6%; EA为84%,93%和91%; TC分别为0.42、0.31和0.34秒,分别采用频谱分析法,统计法和混合法。

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