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Data fusion for a street lighting monitoring system based on statistical inference and fuzzy logic

机译:基于统计推理和模糊逻辑的街道照明监控系统的数据融合

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A street lighting system designed with features to detect critical functional problems using data fusion concepts is presented. With measurements of rms voltage, active power and power factor, an intelligent algorithm is capable of define some system anomalies: failed lamps, power line theft, high and low voltage, and low power factor, this besides the typical measurements of power consumption. The algorithm is based on statistical inference and fuzzy logic to achieve fusion of measured data with the capability of adjusting the membership functions for different street lighting systems (different number of lamps and power consumption). The system with the above mentioned faults was simulated with the Monte Carlo method before its implementation in two real street lighting systems. The algorithm was implemented in a microcomputer Raspberry Pi B+ in Python language including tele-management capabilities. The algorithm design aspects, its implementation, and the comparison of simulated versus real measured values are presented.
机译:展示了一种街道照明系统,介绍了使用数据融合概念来检测关键功能问题的功能。通过测量RMS电压,有功功率和功率因数,智能算法能够定义一些系统异常:灯泡,电源线盗窃,高电压和低功率因数,这除了典型的功耗测量。该算法基于统计推理和模糊逻辑,实现测量数据的融合,具有调整不同街道照明系统(不同灯数和功耗)的隶属函数的能力。在其在两个真正的街道照明系统中实现之前,使用Monte Carlo方法模拟了具有上述故障的系统。该算法在Python语言中的微型计算机覆盆子PI B +中实现,包括远程管理功能。呈现了算法的设计方面,实现和模拟与实际测量值的比较。

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