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Intelligent and situation-aware pervasive system to support debris-flow disaster prediction and alerting in Taiwan

机译:智能和情境普及系统可支持台湾泥石流灾害的预测和警报

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Effective information transmission through robust communications is critical to prevent and alert for natural disasters. However, disasters always destroy the wired communication environment. Moreover, effective information needs to reveal the real situations of the disaster, e.g., the accurate position and the real-time image/video of accident events. An accurate disaster prediction model is useful to reduce casualties and prevent disasters from occurring. An effective disaster prediction is based on the accurate disaster decision model, which can be achieved through the situation-aware information communications between the disaster area and the rescue-control center. This study proposes and designs an Intelligent and Situation-Aware Pervasive System (ISPS), which successfully alert people the occurrence of debris-flow disasters. ISPS is a three-tier architecture consisting of mobile appliances, intelligent situation-aware agents (ISA) and a decision support server based on the wireless/mobile Internet communications. Furthermore, the Location-aware Routing Prediction Method (LRPM) was developed to decrease the transmission traffic and latency of pictures pushing the maps of the disaster to mobile clients. Based on the database of the pre-analyzed 181 potential debris flows in Taiwan, accurate debris flow prediction models were built to prevent debris flow using case-based reasoning (CBR) in the decision support server.
机译:通过强大的通信进行有效的信息传输对于预防和预警自然灾害至关重要。但是,灾难总是会破坏有线通信环境。此外,有效信息需要揭示灾难的真实情况,例如事故事件的准确位置和实时图像/视频。准确的灾难预测模型有助于减少人员伤亡并防止灾难发生。有效的灾难预测基于准确的灾难决策模型,该模型可以通过灾区与救援控制中心之间的情况感知信息通信来实现。这项研究提出并设计了一种智能的情境感知普及系统(ISPS),该系统可以成功地警告人们泥石流灾害的发生。 ISPS是一个三层体系结构,由移动设备,智能态势感知代理(ISA)和基于无线/移动Internet通信的决策支持服务器组成。此外,开发了位置感知路由预测方法(LRPM),以减少图片的传输流量和延迟,从而将灾难地图推向移动客户端。基于预先分析的台湾181个潜在泥石流的数据库,在决策支持服务器中使用基于案例的推理(CBR)建立了准确的泥石流预测模型,以防止泥石流。

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