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Recognizable-Image Selection for Fingerprint Recognition With a Mobile-Device Camera

机译:通过移动设备相机进行指纹识别的可识别图像选择

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This paper proposes a recognizable-image selection algorithm for fingerprint-verification systems that use a camera embedded in a mobile device. A recognizable image is defined as the fingerprint image which includes the characteristics that are sufficiently discriminating an individual from other people. While general camera systems obtain focused images by using various gradient measures to estimate high-frequency components, mobile cameras cannot acquire recognizable images in the same way because the obtained images may not be adequate for fingerprint recognition, even if they are properly focused. A recognizable image has to meet the following two conditions: First, valid region in the recognizable image should be large enough compared with other nonrecognizable images. Here, a valid region is a well-focused part, and ridges in the region are clearly distinguishable from valleys. In order to select valid regions, this paper proposes a new focus-measurement algorithm using the secondary partial derivatives and a quality estimation utilizing the coherence and symmetry of gradient distribution. Second, rolling and pitching degrees of a finger measured from the camera plane should be within some limit for a recognizable image. The position of a core point and the contour of a finger are used to estimate the degrees of rolling and pitching. Experimental results show that our proposed method selects valid regions and estimates the degrees of rolling and pitching properly. In addition, fingerprint-verification performance is improved by detecting the recognizable images.
机译:本文提出了一种用于指纹验证系统的可识别图像选择算法,该系统使用嵌入在移动设备中的相机。可识别图像被定义为指纹图像,其中包括足以将个人与其他人区分开的特征。虽然一般的相机系统通过使用各种梯度度量来估计高频分量来获取聚焦图像,但是移动相机无法以相同的方式获取可识别的图像,因为即使正确地聚焦了获得的图像也可能不足以进行指纹识别。可识别的图像必须满足以下两个条件:首先,与其他不可识别的图像相比,可识别图像中的有效区域应足够大。在此,有效区域是聚焦良好的部分,该区域的山脊与山谷明显不同。为了选择有效区域,本文提出了一种使用二次偏导数的新的焦点测量算法,并利用梯度分布的相干性和对称性进行了质量估计。其次,从相机平面测得的手指的滚动和俯仰度应在可识别图像的一定范围内。核心点的位置和手指的轮廓用于估计滚动和俯仰的程度。实验结果表明,本文提出的方法选择了有效区域并正确估计了滚动和俯仰的程度。另外,通过检测可识别图像来提高指纹验证性能。

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