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A dorsal hand vein pattern recognition algorithm

机译:背手静脉模式识别算法

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An algorithm for dorsal hand vein pattern recognition is presented in the paper. To improve the recognition ratio, the vein skeleton extracting with little distortion is very important. Firstly, the algorithm acquires a clean, one-pixel-width skeleton with little distortion after a series of processes: size and gray normalizing, Gaussian lowpass and median filtering, NiBlack local dynamic thresholding segmenting, area thresholding, morphological opening and closing, median filtering, conditional thinning, spurs pruning. Then, the seven corrected moment invariants of the vein skeleton are extracted as the feature vector. At last, the feature vector is input into SVM for training and recognition. Experiment shows the algorithm achieves a higher recognition ratio of 95.5%.
机译:提出了一种手背静脉模式识别算法。为了提高识别率,几乎不失真地提取静脉骨骼非常重要。首先,该算法经过一系列处理:大小和灰度归一化,高斯低通和中值滤波,NiBlack局部动态阈值分割,面积阈值,形态学开合,中值滤波,经过一系列处理后,获得了一个干净的,只有一个像素宽度的骨架,几乎没有失真。 ,有条件地变薄,刺骨修剪。然后,提取静脉骨骼的七个校正矩不变量作为特征向量。最后,将特征向量输入到SVM中进行训练和识别。实验表明,该算法具有较高的识别率95.5%。

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