Knowledge-based wireless sensors using sound pressure level for noise pollution monitoring

J. A. Mariscal-Ramirez, J. Fernández-Prieto, M. Gadeo-Martos, J. C. Bago
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引用次数: 8

Abstract

Over the last few years, there is a growing interest in monitoring noise pollution in urban areas and some recent studies have proposed the deployment of Wireless Sensor Networks for this task. Although the noise indicators defined by European Union directive 2002/49/EC can be calculated by sensor nodes, the noise perception is affected by subjective factors and there is not a direct correlation between the indicators and the subjective perception of noise. In this work, we present a mathematic algorithm for calculating the sound pressure level in a sensor node and a Fuzzy Noise Indicator that allows sensor nodes to infer the degree of subjective noise annoyance. Each sensor node executes an adapted Fuzzy Rule-Based System which has two inputs: a) the A-weighting equivalent noise level value and b) its persistence in time. The results show that the use of this Fuzzy Indicator helps to distinguish between situations with noise annoyance and other situations less annoying.
利用声压级进行噪音污染监测的基于知识的无线传感器
在过去的几年里,人们对监测城市地区的噪音污染越来越感兴趣,最近的一些研究已经提出部署无线传感器网络来完成这项任务。虽然欧盟指令2002/49/EC定义的噪声指标可以通过传感器节点来计算,但噪声感知受主观因素的影响,指标与主观噪声感知之间没有直接的相关性。在这项工作中,我们提出了一个用于计算传感器节点声压级的数学算法和一个模糊噪声指标,该指标允许传感器节点推断主观噪声烦恼的程度。每个传感器节点执行一个自适应的基于模糊规则的系统,该系统有两个输入:a) a加权等效噪声电平值和b)其在时间上的持久性。结果表明,使用该模糊指标有助于区分噪声干扰情况和其他不那么恼人的情况。
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