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water level forecast service

The "Flood" project aims to forecasting water levels for stationary hydrological posts with purpose of anti-flood measures.

Brief Description of the Project
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As part of the project, a machine learning library was developed, as well as a recurrent neural network (RNN) with a redesigned mathematical learning apparatus to improve forecasting accuracy. The developed neural network system "Flood" was tested during the severe flood of 2021-2022 in the Republic of Bashkortostan and has the following functionality:
1. Neural network flood forecast for each hydrological post available in the database. Currently, only the "Republic of Bashkortostan" region is available.
2. Neural network modeling of flood zones based on real and forecast data.
3. Obtaining historical and current data from open sources to populate the database in order to predict water levels.
4. Imputation of missing data to improve the accuracy of predicted water levels.
Development Team
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Evgeny Palchevsky

Project Manager, Senior Lecturer at the Department of Data Analysis and Machine Learning of the Financial University under the Government of the Russian Federation.
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Artem Kuzmichev

Project developer, student of the Department of Data Analysis and Machine Learning of the Financial Student of the University under the Government of the Russian Federation. Field of study: "Applied Computer Science".
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Valery Koryakin

Project developer, student of the Department of Data Analysis and Machine Learning of the Financial Student of the University under the Government of the Russian Federation. Field of study: "Applied Computer Science".
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Alexander Pyatunin

Project developer, student of the Department of Data Analysis and Machine Learning of the Financial Student of the University under the Government of the Russian Federation. Field of study: "Applied Computer Science".
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Elina Soboleva

Project designer, student of the Department of Data Analysis and Machine Learning of the Financial Student of the University under the Government of the Russian Federation. Field of study: "Applied Computer Science".
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Alexander Kamantsev

Project developer, student of the Department of Data Analysis and Machine Learning of the Financial Student of the University under the Government of the Russian Federation. Field of study: "Applied Computer Science".
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Anton Pitsenko

Project developer, student of the Department of Data Analysis and Machine Learning of the Financial Student of the University under the Government of the Russian Federation. Field of study: "Applied Computer Science".