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International Journal of Statistics and Applied Mathematics

2021, Vol. 6, Issue 1, Part A

Hydrological remote sensing periodic analysis on forecasting approach


Author(s): S Sathish and R Vishnu Priya

Abstract: In this paper dynamics hydrological data sets are received using various sensors through internet by GPRS. The collected data are estimated using the more popular statistical models. Predictions are performed on those models explored from the stochastic process Thomas-Fiering is a more popular linear stochastic model to estimate Predictions through time series models explored from the stochastic processes of our work carried out. Sensitivity analysis is carried out for better understanding of the model with the stated context of hydro related data. For water, transport, trash, climate, and so forth, the IoT sensors can be utilized successfully.

DOI: 10.22271/maths.2021.v6.i1a.627

Pages: 01-07 | Views: 254 | Downloads: 26

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How to cite this article:
S Sathish, R Vishnu Priya. Hydrological remote sensing periodic analysis on forecasting approach. Int J Stat Appl Math 2021;6(1):01-07. DOI: 10.22271/maths.2021.v6.i1a.627
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