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Multimodal Drunk Density Estimation for Safety Assessment

机译:安全评估的多模式醉酒密度估计

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Drinking alcohol in excess leads to lower self-consciousness, damaging a persons judgment and thus enhances risk of aggressive behavior. It leads to various problems like social abuse, violence, crime, and road accidents. Hence, density of drunk people in a given area is one of the indicators of safety risk. In this work we propose a novel framework to determine density of drunk people in a smart city scenario. Smart cities provide multiple sources of information such as audio, video, and text (online social networks). We detect presence of drunk persons along with time and location by analyzing these information sources individually and then fuse this information to obtain a single drunk index for a given location. We put special focus text analysis and propose a more accurate method to detect drunk event (person) with an accuracy of 84.2%. Experimental results demonstrate the functionality and efficacy of the proposed framework.
机译:饮酒过量导致自我意识降低,损害人员判断,从而提高了侵略性行为的风险。它导致社会滥用,暴力,犯罪和道路事故等各种问题。因此,给定区域中醉酒的密度是安全风险的指标之一。在这项工作中,我们提出了一种新颖的框架来确定智能城市场景中醉酒的密度。智能城市提供多种信息来源,如音频,视频和文本(在线社交网络)。通过单独分析这些信息来源,我们通过分析这些信息来源来检测醉酒人员以及时间和位置,然后融合该信息以获得给定位置的单个醉酒索引。我们将特殊的焦点文本分析提出了一种更准确的方法来检测醉酒事件(人),精度为84.2 %。实验结果展示了拟议框架的功能和功效。

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