基于几何特征的人脸和帧分类数据驱动的帧推荐系统

A. Zafar, T. Popa
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引用次数: 3

摘要

本文提出了一种人脸和眼球形状的自动提取与分类方法。本文提出的新型眼镜形状提取算法,即使对于反射式太阳镜和薄金属框架,也能准确可靠地提取出眼镜的多边形形状。此外,我们确定了能够可靠区分形状类别的关键几何特征,并将其集成到人脸和眼球形状分类的监督学习技术中。最后,我们将形状提取和分类算法整合到一个实际的数据驱动的眼具推荐系统中,并通过用户研究进行了实证验证。
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Face and Frame Classification using Geometric Features for a Data-driven Frame Recommendation System
In this work we present an automatic shape extraction and classification method for face and eye-ware shapes. Our novel eye-ware shape extraction algorithm can extract the polygonal shape of eyeware accurately and reliably even for reflective sun-glasses and thin metal frames. Additionally, we identify key geometric features that can differentiate reliably the shape classes and we integrate them into a supervised learning technique for face and eye-ware shape classification. Finally, we incorporate the shape extraction and classification algorithms into a practical data-driven eye-ware recommendation system that we validate empirically with a user study.
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CiteScore
2.20
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