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Computational Intelligence in Automatic Face Age Estimation: A Survey

机译:自动面部年龄估计中的计算智能:一项调查

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摘要

With the rapid growth of computational intelligence techniques, automatic face age estimation has achieved good accuracy that benefited real-world applications such as access control and monitoring, soft biometrics, and information retrieval. Over the past decade, many new algorithms were developed and previous surveys on face age estimation were either outdated or incomplete. Considering the importance of the expanding research in this topic, we aim to provide an up-to-date survey on the face age estimation techniques. First, we summarize the state-of-the-art databases and the performance metrics for face age estimation. Then, we review the age estimation techniques based on three categories of face features (local, global, and hybrid) and discuss different types of age learning algorithms. Finally, we identify the challenges and provide new insights for future research directions of fully automated face age estimation.
机译:随着计算智能技术的迅速发展,自动面部年龄估计已经获得了良好的准确性,从而使诸如访问控制和监视,软生物识别和信息检索等实际应用受益。在过去的十年中,开发了许多新算法,以前关于面部年龄估计的调查要么过时,要么不完整。考虑到在此主题中进行扩展研究的重要性,我们旨在提供有关面部年龄估计技术的最新调查。首先,我们总结了最先进的数据库和面部年龄估计的性能指标。然后,我们基于三类面部特征(局部,全局和混合)回顾年龄估计技术,并讨论不同类型的年龄学习算法。最后,我们确定挑战并为全自动面部年龄估计的未来研究方向提供新见解。

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