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Dorsal hand vein recognition based on Gabor multi-orientation fusion and Multi - scale HOG features

机译:基于Gabor多方向融合和多尺度HOG特征的手背静脉识别

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摘要

Kinds of factors such as illumination and hand gestures would reduce the accuracy of dorsal hand vein recognition. Aiming at single hand vein image with low contrast and simple structure, an algorithm combining Gabor multi-orientation features fusion with Multi-scale Histogram of Oriented Gradient (MS-HOG) is proposed in this paper. With this method, more features will be extracted to improve the recognition accuracy. Firstly, diagrams of multi-scale and multi-orientation are acquired using Gabor transformation, then the Gabor features of the same scale and multi-orientation will be fused, and the features of the correspondent fusion diagrams will be extracted with a HOG operator of a certain scale. Finally the multi-scale cascaded histograms will be obtained for hand vein recognition. The experimental results show that our method not only improve the recognition accuracy but has good robustness in dorsal hand vein recognition.
机译:诸如照明和手势之类的因素会降低背侧手静脉识别的准确性。针对低对比度,结构简单的单手静脉图像,提出了一种融合Gabor多方向特征融合和多尺度直方图直方图的算法。使用此方法,将提取更多特征以提高识别精度。首先,使用Gabor变换获取多尺度和多方位的图,然后融合相同尺度和多方位的Gabor特征,并用HOG算子提取对应的融合图的特征。一定规模。最后,将获得用于手静脉识别的多尺度级联直方图。实验结果表明,该方法不仅提高了识别精度,而且在手背静脉识别中具有良好的鲁棒性。

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