基于物联网的紧急疏散援助系统的人员检测技术

Prasad Annadata, Wisam Eltarjaman, R. Thurimella
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引用次数: 5

摘要

灾害期间的紧急疏散可以最大限度地减少人员伤亡。在许多司法管辖区,紧急疏散准备是组织的强制性规定,这并不奇怪。就公司而言,这一需要转化为相当大的费用,包括建筑费用、设备、征聘、留用和培训。此外,需要定期进行的疏散演习会造成经常性开支和生产力损失。任何有助于这些演习和实际疏散的自动化都意味着节省成本、时间和生命。疏散辅助系统依赖于考勤系统,而考勤系统的准确性往往不高,特别是在有很多“非刷卡者”(顾客、访客等)的环境中。在紧急情况下要回答的一个关键问题是“大楼里还有多少人?”这个数字是通过比较聚集在集合点的人数和建筑物内最后已知的人数来计算的。基于物联网的系统可以通过提供建筑物中的人数,以自动化的方式提供他们最后已知的位置,甚至自动化对账过程,来增强这个问题的答案。我们提出的系统通过WiFi和运动检测等多通道自动检测建筑物中的人员。这样的系统需要能够可靠地将特定的标识符与人员联系起来。在本文中,我们提出了基于统计和启发式的解决方案,用于使用物联网技术以保护隐私的方式将检测到的标识符链接为属于实际人员。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Person Detection Techniques for an IoT Based Emergency Evacuation Assistance System
Emergency evacuations during disasters minimize loss of lives and injuries. It is not surprising that emergency evacuation preparedness is mandatory for organizations in many jurisdictions. In the case of corporations, this requirement translates to considerable expenses, consisting of construction costs, equipment, recruitment, retention and training. In addition, required regular evacuation drills cause recurring expenses and loss of productivity. Any automation to assist in these drills and in actual evacuations can mean savings of costs, time and lives. Evacuation assistance systems rely on attendance systems that often fall short in accuracy, particularly in environments with lot of "non-swipers" (customers, visitors, etc.,). A critical question to answer in the case of an emergency is "How many people are still in the building?". This number is calculated by comparing the number of people gathered at assembly point to the last known number of people inside the building. An IoT based system can enhance the answer to that question by providing the number of people in the building, provide their last known locations in an automated fashion and even automate the reconciliation process. Our proposed system detects the people in the building automatically using multiple channels such as WiFi and motion detection. Such a system needs the ability to link specific identifiers to persons reliably. In this paper we present our statistics and heuristics based solutions for linking detected identifiers as belonging to an actual persons in a privacy preserving manner using IoT technologies.
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