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How Fashion Talks: Clothing-Region-Based Gender Recognition

机译:时尚谈判方式:以服装区为基础的性别认可

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In this paper, we investigate the gender recognition problem of people in photos via clothing information other than faces in the case of insufficient face specification. Similar to human's intuition on telling a person's gender from his/her dressing, we formulate this problem as a binary classification problem based on features extracted from semantic regions of clothing. Given a query image, we first apply category-level clothing parsing to divide the clothes into several semantic regions, such as blazers, shirts, jeans and so on. From each region, we obtain a local estimation on gender by classifying features describing color, texture and shape as middle level attributes. We then leverage an offline learned Mahalanobis distance metric on the middle level attributes to yield a final prediction on gender. Finally, We evaluate our method on proposed novel dataset and compare with state-of-art methods based on face specification.
机译:在本文中,我们在面部规格不足的情况下,通过面孔以外的衣服信息调查照片中的人们的性别识别问题。与人类的直觉与讲述一个人的性别从他/她的敷料中讲述,我们将这个问题作为基于从衣服的语义区域提取的功能的二进制分类问题。鉴于查询图像,我们首先应用分类级别的服装,解析将衣服划分为几个语义区域,如燃烧器,衬衫,牛仔裤等。从每个区域,通过将描述颜色,纹理和形状作为中间属性的功能进行分类,我们在性别获取本地估计。然后,我们利用离线学习的Mahalanobis距离度量在中层属性上,以产生对性别的最终预测。最后,我们在提出的新型数据集中评估我们的方法,并根据面部规范与最先进的方法进行比较。

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