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Ton Duc Thang University (TDTU) was established on September 24, 1997, as a public university under the Vietnam General Confederation of Labor. After 29 years of development, TDTU has grown into one of the leading universities in Vietnam, with a strong commitment to academic excellence, scientific research, innovation, and international cooperation. With modern facilities, advanced educational programs, and a multidisciplinary approach, TDTU provides a dynamic learning and research environment that promotes creativity and supports the comprehensive development of learners.

Currently, TDTU comprises 16 faculties and offers 52 undergraduate study programs, with a community of more than 77,000 alumni. The University also collaborates with more than 200 adjunct professors and researchers and has produced over 14,200 international publications, reflecting its growing contribution to global academic and scientific communities.

With the vision of becoming a world-class university, TDTU continues to strengthen its educational and research capacity, foster innovation, and enhance international collaboration. The establishment and development of the Journal of Advanced Engineering and Computation (JAEC) represent one of TDTU’s efforts to promote scientific research, disseminate advanced knowledge, and contribute to the development of engineering, technological and interdisciplinary research. More

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  • Vol 6, No 3 (2022)
  • Nguyen

Moving-update Kalman Algorithm in Low-cost Node-Red IoT Network for Estimating Flood Water Level

Quang Dung Nguyen, Hoang Trung Le, Hoang Thien Le, Viet Hung Tran

Abstract


Flooding is one of the most common natural disasters in Vietnam. Although a hydrological monitoring system has been developed in Vietnam, the adoption of a Flood Warning and Monitoring System (FWMS) is still limited. A practical issue is that the river water levels is rarely flat, but undulating with flood water ripples, which makes the measurement inaccurate. In this paper, we will design a recursive Kalman estimation for fluctuating flood water level in the Node-Red IoT network. Indeed, the low complexity of the popular Kalman filter algorithm is very suitable for a low-cost IoT system like Node-Red. In our experiments, the accuracy of our Kalman algorithm is far superior to the standard Moving Average (MA) algorithm. To our knowledge, this is the first time that the Kalman filter has been used in a practical Node-Red IoT experiment. We will show that our novel Moving-update Kalman algorithm, which combines MA and Kalman methods, can track data recursively without prior knowledge of noise’s variance. Our novel algorithm is of linear complexity and, hence, fast enough for low cost IoT and FWMS systems in developing countries like Vietnam. We also included the industrial Message Queuing Telemetry Transport (MQTT) protocol in IoT network in our Node-Red system, which means our designed Node-Red proposal is capable of transferring data to any FWMS network via internet.

 

Creative Commons License

This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium provided the original work is properly cited.


Keywords


Kalman filter, flood water level, NodeRed, IoT, MQTT

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DOI: http://dx.doi.org/10.55579/jaec.202263.367

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Creative Commons License
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Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 International License.