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首页> 外文期刊>Journal of Zhejiang university science >Contact-free and pose-invariant hand-biometric-based personal identification system using RGB and depth data
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Contact-free and pose-invariant hand-biometric-based personal identification system using RGB and depth data

机译:使用RGB和深度数据的非接触式且姿势不变的基于手生物的个人识别系统

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Hand-biometric-based personal identification is considered to be an effective method for automatic recognition. However, existing systems require strict constraints during data acquisition, such as costly devices, specified postures, simple background, and stable illumination. In this paper, a contactless personal identification system is proposed based on matching hand geometry features and color features. An inexpensive Kinect sensor is used to acquire depth and color images of the hand. During image acquisition, no pegs or surfaces are used to constrain hand position or posture. We segment the hand from the background through depth images through a process which is insensitive to illumination and background. Then finger orientations and landmark points, like finger tips or finger valleys, are obtained by geodesic hand contour analysis. Geometric features are extracted from depth images and palmprint features from intensity images. In previous systems, hand features like finger length and width are normalized, which results in the loss of the original geometric features. In our system, we transform 2D image points into real world coordinates, so that the geometric features remain invariant to distance and perspective effects. Extensive experiments demonstrate that the proposed hand-biometric-based personal identification system is effective and robust in various practical situations.
机译:基于手生物学的个人识别被认为是一种有效的自动识别方法。但是,现有系统在数据获取期间需要严格的约束,例如昂贵的设备,指定的姿势,简单的背景和稳定的照明。本文提出了一种基于匹配手的几何特征和颜色特征的非接触式个人识别系统。廉价的Kinect传感器用于获取手的深度和彩色图像。在图像采集期间,不使用钉子或表面来约束手的位置或姿势。我们通过对光照和背景不敏感的过程将手从背景到深度图像进行分割。然后通过测地线轮廓分析获得手指的方向和界标点,例如指尖或手指谷。从深度图像中提取几何特征,从强度图像中提取掌纹特征。在以前的系统中,手部特征(如手指的长度和宽度)被标准化,这导致原始几何特征的丢失。在我们的系统中,我们将2D图像点转换为真实世界的坐标,以便几何特征对于距离和透视效果保持不变。大量实验表明,所提出的基于手生物特征的个人识别系统在各种实际情况下都是有效且强大的。

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