2021
DOI: 10.1007/s11069-021-04910-7
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Energy efficient IoT-based cloud framework for early flood prediction

Abstract: Flood is a recurrent and crucial natural phenomenon affecting almost the entire planet. It is a critical problem that causes crop destruction, destruction to the population, loss of infrastructure, and demolition of several public utilities. An effective way to deal with this is to alert the community from incoming inundation and provide ample time to evacuate and protect property. In this article, we suggest an IoT-based energy efficient flood prediction and forecasting system. IoT sensor nodes are constraine… Show more

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Cited by 19 publications
(13 citation statements)
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“…Flood forecasting and rainfall prediction techniques have improved in the last few years due to the need to address immense economic and environmental losses caused by flood. Thirty-nine (39) out of forty-nine (49) articles explored application of deep learning techniques to flood forecasting, rainfall prediction and adopted various hydrologic modelling approaches like rainfall prediction (Yeditha et al, 2021;Chhetri et al, 2020;Endalie et al, 2021;Kumar et al, 2019), streamflow forecasting (Abbas et al, 2020;Kumar et al, 2004;Le et al, 2019;Loganathan & Mahindrakar, 2021), flood hazard and severity assessment (Kanth et al, 2022a;Kaur et al, 2021;Khosravi et al, 2020), rainfall-runoff modelling (Van et al, 2020) and flood susceptibility mapping (Bui et al, 2020). Interestingly, this is an indication that developing countries exhibit high flood vulnerability than developed countries, which have embraced better flood protection infrastructure, AI-informed water dynamics modelling, nature-based ecological solutions, efficient early warning systems, sustainable ecosystem services, sustainable urban design systems, and policies targeted at improving river health and monitoring.…”
Section: Deep Learning Application To Flood Forecasting and Rainfall ...mentioning
confidence: 99%
“…Flood forecasting and rainfall prediction techniques have improved in the last few years due to the need to address immense economic and environmental losses caused by flood. Thirty-nine (39) out of forty-nine (49) articles explored application of deep learning techniques to flood forecasting, rainfall prediction and adopted various hydrologic modelling approaches like rainfall prediction (Yeditha et al, 2021;Chhetri et al, 2020;Endalie et al, 2021;Kumar et al, 2019), streamflow forecasting (Abbas et al, 2020;Kumar et al, 2004;Le et al, 2019;Loganathan & Mahindrakar, 2021), flood hazard and severity assessment (Kanth et al, 2022a;Kaur et al, 2021;Khosravi et al, 2020), rainfall-runoff modelling (Van et al, 2020) and flood susceptibility mapping (Bui et al, 2020). Interestingly, this is an indication that developing countries exhibit high flood vulnerability than developed countries, which have embraced better flood protection infrastructure, AI-informed water dynamics modelling, nature-based ecological solutions, efficient early warning systems, sustainable ecosystem services, sustainable urban design systems, and policies targeted at improving river health and monitoring.…”
Section: Deep Learning Application To Flood Forecasting and Rainfall ...mentioning
confidence: 99%
“…Sood et al [21] proposed a framework for smart flood management based on the Internet of Things (IoT) and Big data. Kaur et al [22] proposed an IoT-based model that can be used to predict flood efficiently with the energyefficient concept. There are limited publications in this domain as far as the concern of scientometric analysis in 4D printing.…”
Section: Literature Reviewmentioning
confidence: 99%
“…In the paper [61], the authors point out that in order to prolong the life of the system, an energy-saving method based on data heterogeneity can be adopted. A new preprocessing technology of flood detection system, principal component analysis (PCA), is proposed.…”
Section: The Role Of Iot In Ocean Disastersmentioning
confidence: 99%