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How Confident Are You in Your Estimate of a Human Age? Uncertainty-aware Gait-based Age Estimation by Label Distribution Learning

机译:你在估计人类时代的估计是多么自信?标签分销学习的不确定性感知步态的年龄估计

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Gait-based age estimation is one of key techniques for many applications (e.g., finding lost children/aged wanders). It is well known that the age estimation uncertainty is highly dependent on ages (i.e., it is generally small for children while is large for adults/the elderly), and it is important to know the uncertainty for the above-mentioned applications. We therefore propose a method of uncertainty-aware gait-based age estimation by introducing a label distribution learning framework. More specifically, we design a network which takes an appearance-based gait feature as an input and outputs discrete label distributions in the integer age domain. Experiments with the world-largest gait database OULP-Age show that the proposed method can successfully represent the uncertainty of age estimation and also outperforms or is comparable to the state-of-the-art methods.
机译:基于步态的年龄估计是许多应用的关键技术之一(例如,发现失去的儿童/老年沃德)。众所周知,年龄估计不确定性高度依赖于年龄(即,儿童一般小,成人/老年人较大),了解上述申请的不确定性。因此,我们通过引入标签分配学习框架提出了一种不确定感知的步态的年龄估计方法。更具体地说,我们设计了一种网络,该网络采用基于外观的步态功能作为输入,输出整数年龄域中的离散标签分布。与世界上最大的步态数据库的实验ooulp-you的实验表明,该方法可以成功地代表年龄估计的不确定性,并且也与最先进的方法相当或相当。

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