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On Detecting Domestic Abuse via Faces

机译:通过脸部检测家庭滥用

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摘要

Domestic violence is considered a major social problem worldwide. Different countries have enacted the law to contain and protect the victims of domestic violence. In order to understand the nature of domestic violence, medical professionals and researchers have performed manual analysis of facial injuries. The aim of these studies is to find commonly affected facial regions, to determine the types of maxillofacial trauma associated with domestic violence, and to distinguish the injuries of domestic violence from accidents. Analysis of these injuries assist the service providers in providing proper treatment to the victims as well as facilitate law enforcement investigation. This paper automates the process of analyzing the facial injuries to distinguish the victims of domestic abuse from others. For this purpose, Domestic Violence Face database of 450 subjects with two classes namely, Domestic Violence and Non-Domestic Violence, is prepared. The paper also presents a novel framework using activation maps of deep learning features for determining whether an image belongs to domestic violence class or not. The results on the proposed database show that deep learning based framework is effective in detecting domestic injuries.
机译:家庭暴力被认为是全世界的主要社会问题。不同的国家制定了法律遏制和保护家庭暴力的受害者。为了了解家庭暴力的性质,医学专业人员和研究人员对面部伤害进行了手动分析。这些研究的目的是找到常见影响的面部地区,确定与家庭暴力相关的颌面外伤的类型,并区分家庭暴力受伤的伤害。对这些伤害的分析有助于服务提供商向受害者提供适当的待遇,并促进执法调查。本文自动化分析面部伤害以区分国内滥用的受害者的过程。为此目的,家庭暴力面对450名科目有两类的,即家庭暴力和非家庭暴力。本文还介绍了一种新颖的框架,使用深度学习特征的激活图,以确定图像是否属于家庭暴力课。拟议数据库的结果表明,基于深度学习的框架在检测家庭伤害方面是有效的。

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