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3D Age Progression Prediction in Children's Faces with a Small Exemplar-Image Set

机译:带有小样本图像集的儿童面部3D年龄发展预测

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This work aims to develop a system for predicting age progression in children's faces from a small exemplar-image set, which is a critical task to assist in the search for missing children. The proposed method consists of a facial component extraction module, a facial component distance measurement module, and a face synthesis module. It is developed based on the assumption that two similar facial components of two children will retain similar when they grow up. Two different distance measures, namely the learning-based Mahalanobis distance and the curvature-weighted plus bending-energy distance, are employed to select similar facial components from an aging database. The growth curve of each facial component is used to predict the shape, size, and location of each component at a different age. The thin plate spline method is applied to synthesize a 3D face model from the predicted components by minimizing the bending energy. Experiments are conducted to test the proposed method with various subjects and the results show that the proposed method yields promising results.
机译:这项工作旨在开发一种系统,通过一个小的示例图像集来预测儿童面部的年龄发展,这是协助寻找失踪儿童的关键任务。所提出的方法包括面部成分提取模块,面部成分距离测量模块和面部合成模块。它是基于这样的假设而发展的,即两个孩子的两个相似的面部成分在长大后将保持相似的状态。两种不同的距离度量,即基于学习的马氏距离和曲率加权加弯曲能量距离,被用于从衰老数据库中选择相似的面部成分。每个面部组件的生长曲线用于预测不同年龄的每个组件的形状,大小和位置。薄板样条线方法用于通过最小化弯曲能从预测的零部件合成3D面部模型。通过实验对提出的方法进行了多方面的测试,结果表明该方法取得了可喜的效果。

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