Enhancing streamflow forecasting for the Brazilian electricity sector: a strategy based on a hyper-multimodel

Author:

Souza Filho Francisco de Assis de1ORCID,Rocha Renan Vieira2ORCID,Estácio Ályson Brayner3ORCID,Rolim Larissa Zaira Rafael1ORCID,Pontes Filho João Dehon de Araújo2ORCID,Porto Victor Costa1ORCID,Guimarães Sullyandro Oliveira4ORCID

Affiliation:

1. Universidade Federal do Ceará, Brasil

2. Fundação Cearense de Meteorologia e Recursos Hídricos, Brasil

3. Universidade Federal do Ceará, Brasil; Fundação Cearense de Meteorologia e Recursos Hídricos, Brasil

4. Potsdam-Instituts für Klimafolgenforschung, Deutschland; Leibniz-Gemeinschaft, Deutschland; Universität Potsdam, Deutschland

Abstract

ABSTRACT Streamflow forecasting plays an important role in ensuring the reliable supply of electricity in countries heavily reliant on hydropower. This paper proposes a novel framework that integrates various hydrological models, climate models, and observational data to develop a comprehensive forecasting system. Three families of models were employed: seasonal forecasting climate models integrated with hydrological rainfall-runoff models; stochastic or machine learning models utilizing endogenous variables, and stochastic or machine learning models that consider exogenous variables. The hyper-multimodel framework could successfully increase the overall performance of the scenarios generated through the use of the individual models. The quality of the final scenarios generated was directly connected to the performance of the individual models. Therefore, the proposed framework has potential to improve hydrological forecast for the Brazilian electricity sector with the use of more refined and calibrated individual models.

Publisher

FapUNIFESP (SciELO)

Subject

Earth-Surface Processes,Water Science and Technology,Aquatic Science,Oceanography

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