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Apparent and Real Age Estimation in Still Images with Deep Residual Regressors on Appa-Real Database

机译:在Appa-Real数据库上具有深度残差回归的静态图像中的表观和实际年龄估计

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After decades of research, the real (biological) age estimation from a single face image reached maturity thanks to the availability of large public face databases and impressive accuracies achieved by recently proposed methods. The estimation of “apparent age” is a related task concerning the age perceived by human observers. Significant advances have been also made in this new research direction with the recent Looking At People challenges. In this paper we make several contributions to age estimation research. (i) We introduce APPA-REAL, a large face image database with both real and apparent age annotations. (ii)We study the relationship between real and apparent age. (iii) We develop a residual age regression method to further improve the performance. (iv) We show that real age estimation can be successfully tackled as an apparent age estimation followed by an apparent to real age residual regression. (v) We graphically reveal the facial regions on which the CNN focuses in order to perform apparent and real age estimation tasks.
机译:经过数十年的研究,由于拥有大量公开的人脸数据库以及通过最近提出的方法实现的令人印象深刻的准确性,单张脸部图像的真实(生物)年龄估计已趋于成熟。 “表观年龄”的估计是与人类观察者感知的年龄有关的一项任务。在新的研究方向上,随着最近的《看人》挑战也取得了重大进展。在本文中,我们对年龄估算研究做出了一些贡献。 (i)我们引入APPA-REAL,这是一个具有真实年龄和明显年龄注释的大型人脸图像数据库。 (ii)我们研究实际年龄与表观年龄之间的关系。 (iii)我们开发了残差年龄回归方法以进一步改善绩效。 (iv)我们表明,可以将实际年龄估计作为表观年龄估计,然后进行表观人口到实际年龄残差回归来成功解决。 (v)我们以图形方式显示了CNN聚焦的面部区域,以便执行明显的和真实的年龄估算任务。

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