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Facial age estimation based on label-sensitive learning and age-specific local regression

机译:基于标签敏感学习和特定年龄局部回归的面部年龄估计

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In this paper, a new age estimation framework considering the intrinsic properties of human ages is proposed, which improves the dimensionality reduction techniques to learn the connections between facial features and aging labels. To enhance the performance of dimensionality reduction, a distance metric adjustment step is introduced in advance to achieve a suitable metric in the feature space. In addition, to further exploit the ordinal relationship of human ages, the “label-sensitive” concept is proposed, which regards the label similarity during the learning phase of distance metric and dimensionality reduction. Finally, an age-specific local regression algorithm is proposed to capture the complicated aging process for age determination. From the simulation results, the proposed framework achieves the lowest mean absolute error against the existing methods.
机译:本文提出了一种新的考虑人类年龄内在属性的年龄估计框架,该框架改进了降维技术以学习面部特征与衰老标签之间的联系。为了增强降维的性能,预先引入距离度量调整步骤以在特征空间中实现合适的度量。另外,为了进一步利用人类年龄的序数关系,提出了“标签敏感”的概念,该概念涉及距离度量和降维的学习阶段中的标签相似性。最后,提出了一种针对特定年龄段的局部回归算法,以捕获用于确定年龄的复杂老化过程。从仿真结果来看,所提出的框架相对于现有方法实现了最低的平均绝对误差。

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