Locally Adjusted Robust Regression for Human Age Estimation

G. Guo, Yun Fu, Thomas S. Huang, C. Dyer
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引用次数: 133

Abstract

Automatic human age estimation has considerable potential applications in human computer interaction and multimedia communication. However, the age estimation problem is challenging. We design a locally adjusted robust regressor (LARR) for learning and prediction of human ages. The novel approach reduces the age estimation errors significantly over all previous methods. Experiments on two aging databases show the success of the proposed method for human aging estimation.
人类年龄估计的局部校正稳健回归
人类年龄自动估计在人机交互和多媒体通信中具有相当大的应用潜力。然而,年龄估计问题是具有挑战性的。我们设计了一个局部调整稳健回归器(LARR)来学习和预测人类年龄。与以往的方法相比,该方法显著降低了年龄估计误差。在两个老龄化数据库上的实验表明,该方法可以成功地估计人类的年龄。
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