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Human identification from video using advanced gait recognition techniques

机译:使用先进的步态识别技术从视频中进行人身识别

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摘要

The solutions proposed in this thesis contribute to improve gait recognition performance in practical scenarios that further enable the adoption of gait recognition into real world security and forensic applications that require identifying humans at a distance. Pioneering work has been conducted on frontal gait recognition using depth images to allow gait to be integrated with biometric walkthrough portals. The effects of gait challenging conditions including clothing, carrying goods, and viewpoint have been explored. Enhanced approaches are proposed on segmentation, feature extraction, feature optimisation and classification elements, and state-of-the-art recognition performance has been achieved. A frontal depth gait database has been developed and made available to the research community for further investigation. Solutions are explored in 2D and 3D domains using multiple images sources, and both domain-specific and independent modality gait features are proposed.
机译:本文提出的解决方案有助于提高实际场景中的步态识别性能,从而进一步使步态识别能够应用于需要在远处识别人员的现实世界安全和取证应用中。已经使用深度图像对前部步态识别进行了开拓性的工作,以使步态与生物识别穿行门相结合。已经探索了步态挑战性条件(包括衣服,携带物品和视野)的影响。提出了关于分割,特征提取,特征优化和分类元素的增强方法,并且已经实现了最新的识别性能。额叶步态数据库已经开发出来,可供研究团体进一步研究。使用多个图像源在2D和3D域中探索解决方案,并提出了特定于域和独立的模态步态特征。

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    Sivapalan Sabesan;

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  • 年度 2014
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