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  •   Ιδρυματικό Αποθετήριο Πανεπιστημίου Θεσσαλίας
  • Επιστημονικές Δημοσιεύσεις Μελών ΠΘ (ΕΔΠΘ)
  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ.
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Ιδρυματικό Αποθετήριο Πανεπιστημίου Θεσσαλίας
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Deep learning in water resources management: The case study of Kastoria lake in Greece

Thumbnail
Συγγραφέας
Karamoutsou L., Psilovikos A.
Ημερομηνία
2021
Γλώσσα
en
DOI
10.3390/w13233364
Λέξη-κλειδί
Ammonia
Biochemical oxygen demand
Climate change
Complex networks
Decision support systems
Deep neural networks
Dissolution
Forecasting
Lakes
Structural optimization
Water quality
Biological process
Case-studies
Chemical process
Deep learning
Feed forward
Feed-forward network
Lake kastoria
Reliable models
Water quality predictions
Water resources management
Dissolved oxygen
climate change
decision support system
resource management
spatiotemporal analysis
water management
water resource
Greece
Kastoria
Lake Kastoria
Western Macedonia
MDPI
Εμφάνιση Μεταδεδομένων
Επιτομή
The effects of climate change on water resources management have drawn worldwide attention. Water quality predictions that are both reliable and precise are critical for an effective water resources management. Although nonlinear biological and chemical processes occurring in a lake make prediction complex, advanced techniques are needed to develop reliable models and effective management systems. Artificial intelligence (AI) is one of the most recent methods for modeling complex structures. The applications of machine learning (ML), as a part of AI, in hydrology and water resources management have been increasing in recent years. In this paper, the ability of deep neural networks (DNNs) to predict the quality parameter of dissolved oxygen (DO), in Lake Kastoria, Greece, is tested. The available dataset from 11 November 2015, to 15 March 2018, on an hourly basis, from four telemetric stations located in the study area consists of (1) Chl-a (µg/L), (2) pH, (3) temperature—Tw (◦C), (4) conductivity (µS/cm), (5) turbidity (NTU), (6) ammonia (NH4, mg/L), (7) nitrate nitrogen (N–NO3, mg/L), and (8) dissolved oxygen (DO) (mg/L). Feed-forward deep neural networks (FF-DNNs) of DO, with different structures, are tested for all stations. All the well-trained DNNs give satisfactory results. The optimal selected FF-DNNs of DO for each station with a high efficiency (NSE > 0.89 for optimal selected structures/station) constitute a good choice for modeling dissolved oxygen. Moreover, they provide information in real time and comprise a powerful decision support system (DSS) for preventing accidental and emergency conditions that may arise from both natural and anthropogenic hazards. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.
URI
http://hdl.handle.net/11615/74407
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  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ. [19735]

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