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Machine Learning with Metaheuristic Algorithms for Sustainable Water Resources Management
Special Issue Information
Dear Colleagues,
Water resources management (WR) mostly necessitates the prediction or estimation of the nonlinear phenomena (e.g., the parameters related to hydrological cycle). With climate change and population growth in the most parts of the world, the solution of such problems necessitates advanced computational tools. The main aim of this Special Issue is to explore various implementations of machine learning methods (MLM) improved with metaheuristic algorithms (MAs) to advance prediction and/or modeling hydrological/water resources phenomena which have vital importance in management of water resources. The topics of this Special Issue include, but are not limited to:
- Hydrologic forecasting (modeling streamflow, sediment, groundwater, lake level, evaporation, evapotranspiration etc.) with advanced MLM
- Implementation of MLM with new metaheuristic algorithms in WR
- Reservoir operation using MAs
- Ensemble modeling procedure with MLM in WR
- Application of conjunction MLM such as wavelet or EEMD based MLM
Prof. Ozgur Kisi
Guest Editor
Manuscript Submission Information
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Submitted manuscripts should not have been published previously, nor be under consideration for publication elsewhere (except conference proceedings papers). All manuscripts are thoroughly refereed through a single-blind peer-review process. A guide for authors and other relevant information for submission of manuscripts is available on the Instructions for Authors page. Sustainability is an international peer-reviewed open access semimonthly journal published by MDPI.
Please visit the Instructions for Authors page before submitting a manuscript. The Article Processing Charge (APC) for publication in this open access journal is 2400 CHF (Swiss Francs). Submitted papers should be well formatted and use good English. Authors may use MDPI's English editing service prior to publication or during author revisions.
Keywords
- Sustainability in water resources management
- Machine learning in WR
- Hybrid modeling with MLM
- Hydrologic modeling with advanced MLM
- MAs implementation in WR
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