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Advances in Smart Environment Monitoring Systems Using IoT and Sensors

Sensors · 2020 · Vol. 20(11) · pp. 3113–3113
Silvia Liberata UlloG. R. Sinha

Abstract

Air quality, water pollution, and radiation pollution are major factors that pose genuine challenges in the environment. Suitable monitoring is necessary so that the world can achieve sustainable growth, by maintaining a healthy society. In recent years, the environment monitoring has turned into a smart environment monitoring (SEM) system, with the advances in the internet of things (IoT) and the development of modern sensors. Under this scenario, the present manuscript aims to accomplish a critical review of noteworthy contributions and research studies on SEM, that involve monitoring of air quality, water quality, radiation pollution, and agriculture systems. The review is divided on the basis of the purposes where SEM methods are applied, and then each purpose is further analyzed in terms of the sensors used, machine learning techniques involved, and classification methods used. The detailed analysis follows the extensive review which has suggested major recommendations and impacts of SEM research on the basis of discussion results and research trends analyzed. The authors have critically studied how the advances in sensor technology, IoT and machine learning methods make environment monitoring a truly smart monitoring system. Finally, the framework of robust methods of machine learning; denoising methods and development of suitable standards for wireless sensor networks (WSNs), has been suggested.

Air Quality Monitoring and ForecastingWater Quality Monitoring TechnologiesAdvanced Chemical Sensor TechnologiesComputer scienceEnvironmental monitoringInternet of ThingsSustainable developmentWireless sensor networkSystems engineeringSmart environmentRisk analysis (engineering)EngineeringEmbedded system
Citations
681
FWCI
30.78
field-weighted impact
References
102
Percentile
100%
vs. same field & year
Citations per year
References
Urban Air Pollution Monitoring System With Forecasting Models
IEEE Sensors Journal · 2016 · 281 citations
Analysis of Three IoT-Based Wireless Sensors for Environmental Monitoring
IEEE Transactions on Instrumentation and Measurement · 2017 · 305 citations
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