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首页> 外文期刊>Journal of Sensors >Automatic Extraction of Two Regions of Creases from Palmprint Images for Biometric Identification
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Automatic Extraction of Two Regions of Creases from Palmprint Images for Biometric Identification

机译:从掌纹图像自动提取两种折痕生物识别

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Palmprint has become one of the biometric modalities that can be used for personal identification. This modality contains critical identification features such as minutiae, ridges, wrinkles, and creases. In this research, feature from creases will be our focus. Feature from creases is a special salient feature of palmprint. It is worth noting that currently, the creases-based identification is still not common. In this research, we proposed a method to extract crease features from two regions. The first region of interest (ROI) is in the hypothenar region, whereas another ROI is in the interdigital region. To speed up the extraction, most of the processes involved are based on the processing of the image that has been a downsampled image by using a factor of 10. The method involved segmentations through thresholding, morphological operations, and the usage of the Hough line transform. Based on 101 palmprint input images, experimental results show that the proposed method successfully extracts the ROIs from both regions. The method has achieved an average sensitivity, specificity, and accuracy of 0.8159, 0.9975, and 0.9951, respectively.
机译:Palmprint已成为可用于个人识别的生物识别方式之一。此模块包含关键识别功能,如Minutiae,Rigges,皱纹和折痕。在这项研究中,来自折痕的特征将是我们的重点。折痕的功能是Palmprint的特殊突出功能。值得注意的是,目前,基于折痕的识别仍然不常见。在本研究中,我们提出了一种从两个区域提取折痕特征的方法。第一个感兴趣的区域(ROI)位于下次区域,而另一项投资回报率是在斜切区。为了加速提取,所涉及的大多数过程基于通过使用10倍的图像的图像的处理来通过使用阈值,形态操作和霍夫线变换的使用方法来处理分割。 。基于101个掌纹输入图像,实验结果表明,该方法成功地从两个地区提取了ROI。该方法分别实现了0.8159,0.9975和0.9951的平均灵敏度,特异性和精度。

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