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Design of a Decentralized and Predictive Real-Time Framework for Air Pollution Spikes Monitoring

机译:空气污染尖峰监测分散和预测实时框架的设计

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Exposure to air pollution spikes cause health problems to regularly exposed organisms, raising the need to monitor them in real-time. Existing air pollution monitors mainly use a cloud-centric design considering relatively constant pollution, therefore duty-cycling sensors with long sleep periods to save their batteries. Such design is however inefficient for monitoring pollution spikes. Furthermore, since spikes vanish rapidly, integrity of monitoring data is very important. This paper presents a framework integrating edge-centric design and blockchain in monitoring air pollution spikes, while using short-term prediction artificial intelligence to timely alert pollution emitters about exceeding long-term average pollution limits defined by standards.
机译:暴露于空气污染尖峰导致健康问题定期暴露生物,提高需要实时监测它们的需要。 现有的空气污染监测器主要使用云彩的设计,考虑相对恒定的污染,因此具有长期睡眠时期的勤人传感器,以节省电池。 然而,监测污染尖峰的这种设计效率低。 此外,由于尖峰迅速消失,监测数据的完整性非常重要。 本文介绍了一个框架,整合边缘设计和区块链在监测空气污染尖峰时,同时使用短期预测人工智能,及时警告污染发射器超过标准定义的长期平均污染限制。

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