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Verifying the Newborns without Infection Risks Using Contactless Palmprints

机译:使用非接触式棕榈图纹验证新生儿没有感染风险

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Verification of new-born babies utilizing the biometric characteristics has received an increased attention, especially in applications such as law enforcement, vaccination tracking, and medical services. In this work, we present an introductory study on exploring contactless palmprint biometric for the verification of new-borns. To the best of our knowledge, this is the first work to explore automatic contactless palmprint verification of new-born babies. We have captured a new database of contactless palmprint images from 50 new-born babies in two different sessions. The first session data is captured between 6-8 hours after the birth and the second session data is captured between 28-36 hours after the birth. Extensive experiments are carried out using seven different state-of-the-art palmprint algorithms to benchmark both left and right contactless palmprint characteristics captured from the new-born babies. We further propose a new method based on transfer learning by fine-tuning the pre-trained AlexNet architecture to improve the verification accuracy. Our experiments have demonstrated improved results using proposed scheme and thereby indicate the benefit of the contactless palmprint data to verify the identity of the new-born babies.
机译:利用生物识别特性的新出生婴儿的验证已收到增加的关注,特别是在执法,疫苗接种跟踪和医疗服务等应用中。在这项工作中,我们对探索非接触式掌纹生物识别进行了介绍性研究,以便验证新生。据我们所知,这是第一个探索新生婴儿自动非接触式掌纹验证的工作。我们捕获了来自两种不同的50个新生婴儿的非接触式棕榈纹图像数据库。第一个会话数据在出生后6-8小时之间捕获,第二个会话数据在出生后28-36小时之间捕获。使用七种不同的最先进的掌纹算法进行了广泛的实验,以基准从新生婴儿捕获的左右非接触式掌纹特性。我们进一步提出了一种基于转移学习的新方法,通过微调预先调整预先训练的alexNet架构来提高验证准确性。我们的实验已经展示了使用所提出的方案的改进的结果,从而表明非接触式掌纹数据的益处,以验证新生婴儿的身份。

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