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Dorsal Hand Vein Recognition Method Based on Multi-bit Planes Optimization

机译:基于多位平面优化的背手静脉识别方法

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With the development of technology, how to improve the accuracy of dorsal hand vein recognition has become the focus of current research. In order to solve this problem, this paper proposes a dorsal hand vein image recognition method which is based on multi-bit planes and Deep Learning network. The multi-bit planes can not only fully use the gray information of the images but also their intrinsic relationship between the bit planes of the images. In addition, the bit plane with less information is removed according to the Euclidean distance, and a new bit planes sequence is formed, and the accuracy of the recognition of the dorsal hand vein is improved. The algorithm is tested on the real dorsal hand vein database, and the recognition accuracy is more than 99%, which proves the effectiveness of the algorithm.
机译:随着技术的发展,如何提高手背静脉识别的准确性已成为当前研究的重点。为了解决这个问题,本文提出了一种基于多位平面和深度学习网络的手背静脉图像识别方法。多位平面不仅可以充分利用图像的灰度信息,还可以充分利用它们在图像位平面之间的固有关系。另外,根据欧几里得距离去除信息量少的位平面,形成新的位平面序列,提高了背手静脉的识别精度。在真实的手背静脉数据库上对该算法进行了测试,识别精度达到99%以上,证明了该算法的有效性。

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