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Smart building environment monitoring based on Gaussian Process

机译:基于高斯过程的智能建筑环境监控

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With the widespread use of the Internet of Things (IoT), it is possible to continuously and accurately monitor different phenomena in the environment. For example, indoor environment detection of smart buildings, pollution source monitoring of smart cities, etc. This paper focuses on indoor environmental monitoring, using intelligent decives to collect indoor environmental data, analyzing the spatial correlation of data, using Gaussian Process (GP) to achieve spatial field reconstruction, and data prediction at any position in space. Most importantly, this method has practical significance in energy conservation and emission reduction and safety monitoring methods. The proposed approach was implemented in Intel Berkeley Lab, where the obtained results are highly promising.
机译:随着物联网(IoT)的广泛使用,可以连续准确地监视环境中的不同现象。例如,智能建筑的室内环境检测,智能城市的污染源监控等。本文着重于室内环境监控,使用智能决策收集室内环境数据,分析数据的空间相关性,并使用高斯过程(GP)实现空间场重建,以及空间中任何位置的数据预测。最重要的是,该方法在节能减排和安全监测方法中具有实际意义。提议的方法在英特尔伯克利实验室实施,该实验室获得的结果非常有前途。

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