A comparison study: the impact of age and gender distribution on age estimation

Chang Kong, Qiuming Luo, Guoliang Chen
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引用次数: 1

Abstract

Age estimation from a single facial image is a challenging and attractive research area in the computer vision community. Several facial datasets annotated with age and gender attributes became available in the literature. However, one major drawback is that these datasets do not consider the label distribution during data collection. Therefore, the models training on these datasets inevitably have bias for the age having least number of images. In this work, we analyze the age and gender distribution of previous datasets and publish an Uniform Age and Gender Dataset (UAGD) which has almost equal number of female and male images in each age. In addition, we investigate the impact of age and gender distribution on age estimation by comparing DEX CNN model trained on several different datasets. Our experiments show that UAGD dataset has good performance for age estimation task and also it is suitable for being an evaluation benchmark.
比较研究:年龄和性别分布对年龄估计的影响
从单个面部图像中估计年龄是计算机视觉界一个具有挑战性和吸引力的研究领域。一些带有年龄和性别属性注释的面部数据集在文献中可用。然而,一个主要的缺点是这些数据集在数据收集过程中没有考虑标签分布。因此,在这些数据集上训练的模型不可避免地会对图像数量最少的年龄产生偏差。在这项工作中,我们分析了以前数据集的年龄和性别分布,并发布了一个统一年龄和性别数据集(UAGD),该数据集在每个年龄中具有几乎相同数量的女性和男性图像。此外,我们通过比较在几个不同数据集上训练的DEX CNN模型,研究了年龄和性别分布对年龄估计的影响。我们的实验表明,UAGD数据集在年龄估计任务中具有良好的性能,并且适合作为评估基准。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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