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Walking Direction Estimation for Gait Based Applications

机译:基于步态应用的步行方向估计

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摘要

Gait has become a popular trait for biometric person recognition/re-identification. This is due to its advantage of being captured without any subject cooperation. This made it suitable especially for video surveillance applications. However, the gait features obtained in such scenarios depends on the observed walking direction of the subject. In this paper, we deal with the problem related to walking direction estimation in unconstrained environments. Covariates factors (i.e. carrying different types of bag, clothing) affect considerably the accuracy of walking direction estimation problem. Therefore, we have proposed a solution which is suitable for both real time application and unconstrained environment where the user walking direction is different and affected by covariates factors. The discriminative power of this solution is verified through experiments. The performance of this method was evaluated on the CASIA-B database. Experimental results prove the effectiveness of our proposed walking direction estimation method.
机译:步态已成为生物识别人员认可/重新识别的热门特质。这是由于其在没有任何主题合作的情况下被捕获的优势。这使其适用于视频监控应用。然而,在这种情况下获得的步态特征取决于观察到的对象的步行方向。在本文中,我们处理与不受约束环境中的步行方向估计相关的问题。协变量因素(即携带不同类型的袋子,衣物)影响步行方向估计问题的准确性。因此,我们提出了一种适用于实时应用和不受约束的环境的解决方案,其中用户行走方向不同并受到协变量的影响。通过实验验证该解决方案的辨别力。在CASIA-B数据库中评估了该方法的性能。实验结果证明了我们所提出的行走方向估计方法的有效性。

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