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Flood Forecasting Using Artificial Intelligence (AI): A Prisma – Guided Systematic Review Cover

Flood Forecasting Using Artificial Intelligence (AI): A Prisma – Guided Systematic Review

Open Access
|Jul 2026

Abstract

Subject and purpose of work

The purpose of the study is to examine the implementation of artificial intelligence (AI) techniques to forecast floods.

Materials and methods

This study systematically reviews 42 papers published between 1989 and 2025. The dataset was extracted from the Scopus and Web of Science databases using predefined keywords and inclusion-exclusion criteria. Following the PRISMA-2020 framework, the analysis investigates AI techniques, statistical methods, and commonly used keywords in flood forecasting.

Results

The s tudy r eveals t hat m achine l earning ( ML) a nd d eep l earning ( DL) a re w idely applied AI techniques, with the root mean square error (RMSE) that has been employed for flood forecasting. The keywords, such as “artificial intelligence,” “prediction,” “flood forecasting,” and “floods,” are frequently used in this domain.

Conclusion

The s tudy concludes t hat advanced A I techniques enhance forecasting accuracy, improve early warning systems, and promote the development of evidence-based disaster reduction strategies.

DOI: https://doi.org/10.2478/ers-2026-0020 | Journal eISSN: 2451-182X | Journal ISSN: 2083-3725
Language: English
Page range: 345 - 366
Submitted on: Aug 1, 2025
Accepted on: Nov 1, 2025
Published on: Jul 31, 2026
Published by: John Paul II University in Biała Podlaska
In partnership with: Paradigm Publishing Services

© 2026 Somanath Kumar Mishra, Prasanta Patri, published by John Paul II University in Biała Podlaska
This work is licensed under the Creative Commons Attribution 4.0 License.