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基于多圖融合和改進(jìn)Xception網(wǎng)絡(luò )的跨設備手背靜脈識別研究
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北方工業(yè)大學(xué) 信息學(xué)院

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國家自然科學(xué)基金(61673021)


Cross-Device Recognition Research of Dorsal Hand Vein Images Based on Channel Merging and Improved Xception Network
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    摘要:

    手背靜脈是一種新興的生物特征識別技術(shù),相比其他生物特征具有唯一性、防偽造性、穩定性、和非接觸性等明顯優(yōu)勢。由于采集設備和采集環(huán)境的不同,手背靜脈灰度圖像存在亮度、角度旋轉、尺度縮放等差異,識別率較低。由此提出一種基于多圖融合和Xception網(wǎng)絡(luò )的手背靜脈識別算法。首先在圖像預處理后分割得到二值紋理圖,然后將二值圖轉換為距離圖,再由二值圖細化得到骨架圖。最后融合二值圖、距離圖和骨架圖,得到包含紋理特征和形狀特征的三通道合并圖。采用Xception結構作為分類(lèi)網(wǎng)絡(luò ),并將其激活函數ReLU改為非線(xiàn)性更強的h-swish激活函數。相關(guān)實(shí)驗在由實(shí)驗室自建的1庫和2庫兩個(gè)數據庫上進(jìn)行,其中1庫作為訓練集,2庫作為測試集,最高識別率達到93.54%.

    Abstract:

    Recognition of dorsal hand vein is an emerging biometric identification technology, which has obvious advantages compared with other biometrics, such as uniqueness, anti-counterfeiting, stability, and non-contact. Due to the difference of the acquisition equipment and acquisition environment, the gray-scale images of the dorsal hand vein have differences in brightness, angle rotation, scale scaling, etc., so recognition rate is low. Therefore, a dorsal hand vein recognition algorithm based on multi-image fusion and Xception network is proposed. Firstly, a binary texture map is obtained by segmentation after image preprocessing, and then the binary image is transformed into a distance map, and then the skeleton image is achieved through thinning of the binary image. Finally, the binary image, distance image, and skeleton image are combined to obtain a three-channel merged image containing texture features and shape features. The Xception architecture is used as the classification network, and its activation function ReLU is changed to the more nonlinear activation function h-swish. Relevant experiments are carried out on two databases, library 1 and library 2, built by our laboratory. Library 1 is used as training set and library 2 is used as test set. The recognition rate reaches 93.54%.

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王一丁,曹曉彤.基于多圖融合和改進(jìn)Xception網(wǎng)絡(luò )的跨設備手背靜脈識別研究計算機測量與控制[J].,2021,29(6):153-158.

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  • 收稿日期:2020-12-02
  • 最后修改日期:2020-12-24
  • 錄用日期:2020-12-24
  • 在線(xiàn)發(fā)布日期: 2021-07-07
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