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http://dx.doi.org/10.7236/IJASC.2020.9.1.63

A Study on Environmental Micro-Dust Level Detection and Remote Monitoring of Outdoor Facilities  

Kim, Seung Kyun (Dept. of Electronics and IT Media Engr., Seoul National Univ. of Sci. & Tech.)
Mariappan, Vinayagam (Graduate School of Nano IT Design Fusion, Seoul National Univ. of Sci. & Tech.)
Cha, Jae Sang (Dept. of Electronics and IT Media Engr., Seoul National Univ. of Sci. & Tech.)
Publication Information
International journal of advanced smart convergence / v.9, no.1, 2020 , pp. 63-69 More about this Journal
Abstract
The rapid development in modern industrialization pollutant the water and atmospheric air across the globe that have a major impact on the human and livings health. In worldwide, every country government increasing the importance to improve the outdoor air pollution monitoring and control to provide quality of life and prevent the citizens and livings life from hazard disease. We proposed the environmental dust level detection method for outdoor facilities using sensor fusion technology to measure precise micro-dust level and monitor in realtime. In this proposed approach use the camera sensor and commercial dust level sensor data to predict the micro-dust level with data fusion method. The camera sensor based dust level detection uses the optical flow based machine learning method to detect the dust level and then fused with commercial dust level sensor data to predict the precise micro-dust level of the outdoor facilities and send the dust level informations to the outdoor air pollution monitoring system. The proposed method implemented on raspberry pi based open-source hardware with Internet-of-Things (IoT) framework and evaluated the performance of the system in realtime. The experimental results confirm that the proposed micro-dust level detection is precise and reliable in sensing the air dust and pollution, which helps to indicate the change in the air pollution more precisely than the commercial sensor based method in some extent.
Keywords
Micro-Dust Detection; Air Pollution Monitoring; Internet of Things (IoT); Air Quality Index (AQI);
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Times Cited By KSCI : 8  (Citation Analysis)
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1 Web Report, "Ambient (outdoor) air quality and health," World Health Organization, 2016. [Online], Available: http://www.who.int/mediacentre/factsheets/fs313/en/
2 M.Vinayagam, L. Sung-Hwa Lee, et al, "Optical Filter Design for Fluorescence Technique Based Phycocyanin Measurement Sensor Used in Water Treatment Plants," International Journal of Internet, Broadcasting and Communication (IJIBC), Vol.10, No.2, pp.45-50, 2018. DOI: http://dx.doi.org/10.7236/IJIBC.2018.10.2.8   DOI
3 S. C. Folea and G. Mois, "A low-power wireless sensor for online ambient monitoring," IEEE Sensors Journal, Vol. 15, No. 2, pp. 742-749, 2015. DOI: 10.1109/JSEN.2014.2351420   DOI
4 E. Fotopoulou, et al., "Linked data analytics in interdisciplinary studies: The health impact of air pollution in urban areas,'' IEEE Access, Vol. 4, pp. 149-164, 2016. DOI: 10.1109/ACCESS.2015.2513439   DOI
5 K. B. Shaban, A. Kadri, and E. Rezk, "Urban air pollution monitoring system with forecasting models," IEEE Sensors Journal, Vol. 16, No. 8, pp. 2598-2606, 2016. DOI: 10.1109/JSEN.2016.2514378   DOI
6 W. Y. Li, K. M. Lo, T. Mak, K. S. Leung, Y. Leung, and M. L. Meng, "A survey of wireless sensor network based air pollution monitoring systems,'' Sensors, Vol. 15, No. 12, pp. 31392-31427, 2015. DOI: 10.3390/s151229859   DOI
7 X. Li, et al., "Miniaturized particulate matter sensor for portable air quality monitoring devices,'' in Proceedings of the IEEE Sensors, Valencia, Spain, pp. 2151-2154, 2014. DOI: 10.1109/ICSENS.2014.6985464
8 Y. Ma, S. Yang, Z. Huang, Y. Hou, L. Cui, and D. Yang, "Hierarchical air quality monitoring system design,'' in Proceedings of the IEEE International Symposium on Integrated Circuits (ISIC), Singapore, pp. 284-287, 2014. DOI: 10.1109/ISICIR.2014.7029544
9 Y. Yang and L. Li, "A smart sensor system for air quality monitoring and massive data collection," in Proceedings of the IEEE International Conference on Information and Communication Technology Convergence (ICTC), Jeju, South Korea, pp. 147-152, 2015. DOI: 10.1109/ICTC.2015.7354515
10 IEEE Standard for Local and Metropolitan Area networks Part 15.4 : Low-Rate Wireless Personal Area Networks (LR-WPANs) and Amendment 5 : Physical Layer Specifications for Low Energy, Critical Infrastructure Monitoring Networks, IEEE Standard 802.15.4k-2013, 2013.
11 L.Vadim and M.Vinayagam, "Temperature Trend Predictive IoT Sensor Design for Precise Industrial Automation," International Journal of Advanced Smart Convergence (IJASC), Vol.7, No.4, pp.75-83, 2018. DOI: https://doi.org/10.7236/IJASC.2018.7.4.75   DOI
12 P. Taejoon and C. Jaesang, "Development of IoT based Real-Time Complex Sensor Board for Managing Air Quality in Buildings," International Journal of Internet, Broadcasting and Communication (IJIBC), Vol.10, No.4, pp.75-82, 2018. DOI: http://dx.doi.org/10.7236/IJIBC.2018.10.2.8   DOI
13 P.M. Trung, M. Vinayagam, and C. Jaesang, "A Study on IoT/LPWA-based Low Power Solar Panel Monitoring System for Smart City," The Journal of The Korea Institute of Intelligent Transport Systems, Vol.18, No.1, pp.74- 82, 2019. DOI: 10.12815/kits.2019.18.1.74   DOI
14 K.Jintae, M.Vinayagam, et al, "Low Energy IoT Integrated Microgrid for Self-powering Remote Environmental Sensing Terminal," International Journal of Research and Analytical Reviews (IJRAR), Vol.6, No.2, pp.244-247, 2019. DOI:10.6084/m9.doi.one.IJRAR19K5244