Design of an AI Health Risk Assessment System for Dietary Hygiene of Key Groups Based on IoT Wearable Devices

Boyuan Wang, Hai Lin, Shenglin Xia
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Abstract

: Population Spatio-temporal big data mining and analysis techniques have been applied to risk assessment of disease transmission, which can describe disease transmission pathways and high-risk areas in fine detail. Based on spatial statistical analysis and artificial intelligence technology, this study seeks to break through the previous risk warning model of a single data source from medical institutions in the era of small data and designs an AI health risk assessment system for the dietary hygiene of key populations. The system is designed to collect multi-source Spatio-temporal big data consisting of urban population positioning, a sanitary inspection of restaurant premises, foodborne disease cases in medical institutions, and environmental monitoring. Spatial location attributes are assigned to the monitoring data, and food and multi-source data are fused across borders. Through the Internet of Things (IoT) technology, the system is designed with an IoT system consisting of sensors for automatic monitoring and wearable devices for real-time warning. Based on the spatial and artificial intelligence models, the system designs personalized and real-time early warning information for critical populations to prevent dietary health risks and provide scientific basis and support for public health departments to prevent foodborne diseases.
基于物联网可穿戴设备的重点人群饮食卫生AI健康风险评估系统设计
时空大数据挖掘与分析技术已被应用于疾病传播风险评估,可以详细描述疾病传播途径和高风险区域。本研究基于空间统计分析和人工智能技术,力求突破以往小数据时代医疗机构单一数据源的风险预警模式,设计重点人群饮食卫生AI健康风险评估系统。该系统旨在收集多源时空大数据,包括城市人口定位、餐饮场所卫生检查、医疗机构食源性疾病病例和环境监测。为监测数据赋予空间定位属性,实现食品和多源数据跨界融合。通过物联网(IoT)技术,该系统设计了一个由用于自动监控的传感器和用于实时预警的可穿戴设备组成的物联网系统。该系统基于空间模型和人工智能模型,为关键人群设计个性化、实时的饮食健康风险预警信息,为公共卫生部门开展食源性疾病预防提供科学依据和支持。
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