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Human identification system based on feature level fusion using face and gait biometrics

机译:基于面部和步态生物特征的特征级融合的人体识别系统

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摘要

During the past years, face and gait recognition in video have received significant attention. Consequently, their recognition problems have challenged due to largely varying appearances and highly complex pattern distributions. However, the complementary properties of these two biometrics suggest fusion of them. Face recognition is more reliable when the person is close to the camera. On the other hand, gait is a suitable biometric trait for human recognition at a distance. Information from these two biometric sources, frontal of face and side of gait, are utilized and integrated at feature level. Face image is represented by the Active Lines among Face Landmark Points (ALFLP) feature vector. Gait image is represented by the Active Horizontal Levels (AHL) feature vector. Face and gait feature vectors are fused using a proposed effective fusion method. The proposed system was tested on CASIA database and the achieved results showed that the integrated face and gait features carry the most discriminating power compared to any individual biometric.
机译:在过去的几年中,视频中的面部表情和步态识别受到了极大的关注。因此,由于外观变化和图案分布高度复杂,它们的识别问题受到了挑战。但是,这两个生物特征的互补性质表明它们融合了。当人靠近相机时,人脸识别更加可靠。另一方面,步态是适合远距离人类识别的生物特征。来自这两个生物特征来源的信息(面部正面和侧面步态)在特征级别得到利用和整合。人脸图像由人脸地标点之间的活动线(ALFLP)特征向量表示。步态图像由主动水平位(AHL)特征向量表示。使用提出的有效融合方法融合面部和步态特征向量。拟议的系统在CASIA数据库上进行了测试,获得的结果表明,与任何单独的生物特征识别系统相比,集成的面部和步态特征具有最大的识别能力。

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