A density based method for automatic hairstyle discovery and recognition

Jyotikrishna Dass, Monika Sharma, Ehtesham Hassan, Hiranmay Ghosh
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引用次数: 13

Abstract

This paper presents a novel method for discovery and recognition of hairstyles in a collection of colored face images. We propose the use of Agglomerative clustering for automatic discovery of distinct hairstyles. Our method proposes automated approach for generation of hair, background and face-skin probability-masks for different hairstyle category without requiring manual annotation. The probability-masks based density estimates are subsequently applied for recognizing the hairstyle in a new face image. The proposed methodology has been verified with a synthetic dataset of approximately thousand images, randomly collected from the Internet.
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一种基于密度的发型自动发现与识别方法
本文提出了一种从彩色人脸图像中发现和识别发型的新方法。我们建议使用聚集聚类来自动发现不同的发型。我们的方法提出了一种自动生成不同发型类别的头发、背景和面部皮肤概率面具的方法,而无需手动注释。然后将基于概率掩模的密度估计应用于新人脸图像的发型识别。所提出的方法已经通过从互联网上随机收集的大约一千张图像的合成数据集进行了验证。
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