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Facial beauty analysis based on geometric feature: Toward attractiveness assessment application

机译:基于几何特征的面部美容分析:向吸引力评估应用

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摘要

Facial beauty analysis has been an emerging subject of multimedia and biometrics. This paper aims at exploring the essence of facial beauty from the viewpoint of geometric characteristic toward an interactive attractiveness assessment (IAA) application. As a result, a geometric facial beauty analysis method is proposed from the perspective of machine learning. Due to the troublesome and subjective beauty labeling, the accurately labeled data scarcity is caused, and result in very few labeled data. Additionally, facial beauty is related to several typical features such as texture, color, etc., which, however, can be easily deformed by make-up. For addressing these issues, a semi-supervised facial beauty analysis framework that is characterized by feeding geometric feature into the intelligent attractiveness assessment system is proposed. For experimental study, we have established a geometric facial beauty (GFB) dataset including Asian male and female faces. Moreover, an existing multi-modal beauty ((MB)-B-2) database including western and eastern female faces is also tested. Experiments demonstrate the effectiveness of the proposed method. Some new perspectives on the essence of beauty and the topic of facial aesthetic are revealed. The impact of this work lies in that it will attract more researchers in related areas for beauty exploration by using intelligent algorithms. Also, the significance lies in that it should well promote the diversity of expert and intelligent systems in addressing such challenging facial aesthetic perception and rating issue. (C) 2017 Elsevier Ltd. All rights reserved.
机译:面部美容分析已成为多媒体和生物识别技术的新兴主题。本文旨在从几何特征的角度探讨面部美容的本质,并应用于交互式吸引力评估(IAA)。因此,从机器学习的角度提出了一种几何面部美容分析方法。由于麻烦且主观的美容标签,导致准确标记的数据稀缺,导致标记的数据很少。另外,面部美容与几种典型特征有关,例如质地,颜色等,但是这些特征很容易因化妆而变形。为了解决这些问题,提出了一种以几何特征输入智能吸引力评估系统为特征的半监督人脸美容分析框架。为了进行实验研究,我们建立了包括亚洲男性和女性面孔的几何面部美容(GFB)数据集。此外,还测试了一个包含西方和东方女性面孔的现有多模态美容((MB)-B-2)数据库。实验证明了该方法的有效性。揭示了一些关于美的本质和面部美学的新观点。这项工作的影响在于,它将利用智能算法吸引更多相关领域的研究人员进行美容探索。同样,意义在于,在解决这种具有挑战性的面部美学感知和评级问题时,它应该很好地促进专家和智能系统的多样性。 (C)2017 Elsevier Ltd.保留所有权利。

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