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Abstract
ABS-21
Multivariate Time-Series Flood Prediction Using LSTM Networks and GIS-Based Visualization of Meteorological Data from BMKG
Rando (a*), Agusman (a)
Corresponding Author: Rando Rando


Question from Mr. Dr. Nadir La Djamudi, S.Pd., M.Pd
2025.12.16 10:23:46

I am Dr. Nadir La Djamudi from Universitas Muhammadiyah Buton, Baubau City.
Although I am a linguist, I am very interested in your research topic, ^Multivariate
Time-Series Flood Prediction Using LSTM Networks and GIS-Based Visualization of
Meteorological Data from BMKG,^ because I live in Baubau City.

My question is: What are the contributions of your research findings for Baubau City,
both at present and in the future?

Thank you.

Reply from Mr. Rando Rando
2025.12.16 11:41:14

The findings of this research provide immediate contributions for Baubau City by delivering a data-driven flood forecasting and spatial visualization framework that supports early warning and localized risk identification. In the future, the proposed integration of deep learning and GIS can serve as a scalable decision-support tool for urban flood management, enabling improved planning, infrastructure adaptation, and disaster preparedness as hydrometeorological risks increase.

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