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A Big Data Framework for Urban Noise Analysis and Management in Smart Cities

机译:智能城市城市噪声分析与管理的大数据框架

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摘要

Environmental pollution monitoring is a major concern in the development of smart cities. Nowadays, urban noise is one of the most relevant pollutants, so many networks of acoustic sensors have been deployed to measure sound pressure levels at various locations. These acoustic sensors collect huge amounts of data, which can be helpful to manage noise events in urban planning. In this paper, a big data framework is proposed to properly analyse the considerably large amounts of noise monitoring data and obtain useful information for urban planning. A map and reduce approach is proposed to process the massive data captured from acoustic sensor networks, mobile phones and open data platforms. Using the map and reduce model, several statistical environmental acoustic parameters, including both temporal and spatial indices, can be calculated. As an example application, two algorithms are implemented to evaluate both day-evening-night equivalent levels (L-den) and percentile levels (L-n). An experimental case with data obtained from the Dublin open data platform shows the benefits of this framework for urban noise analysis and management.
机译:环境污染监测是智能城市发展的主要关注点。如今,城市噪声是最相关的污染物之一,所以已经部署了许多声学传感器网络以测量各个位置的声压水平。这些声学传感器收集大量数据,这可能有助于管理城市规划中的噪声事件。在本文中,提出了一个大数据框架,以适当地分析大量大量的噪声监测数据,并获得城市规划的有用信息。提出了一种地图和降低方法来处理从声学传感器网络,移动电话和打开数据平台捕获的大规模数据。使用地图和降低模型,可以计算几种统计环境声学参数,包括时间和空间指标。作为示例应用程序,实现了两种算法以评估日常夜间等效级别(L-DEN)和百分位数(L-N)。从都柏林开放数据平台获得的数据的实验情况显示了该框架的城市噪声分析和管理框架的好处。

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