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GPU-accelerated stochastic predictive control of drinking water networks

Tijdschriftbijdrage - Tijdschriftartikel

© 1993-2012 IEEE. Despite the proven advantages of scenario-based stochastic model predictive control for the operational control of water networks, its applicability is limited by its considerable computational footprint. In this paper, we fully exploit the structure of these problems and solve them using a proximal gradient algorithm parallelizing the involved operations. The proposed methodology is applied and validated on a case study: the water network of the city of Barcelona.
Tijdschrift: IEEE Transactions on Control Systems Technology
ISSN: 1063-6536
Issue: 2
Volume: 26
Pagina's: 551 - 562
Jaar van publicatie:2018
BOF-keylabel:ja
IOF-keylabel:ja
BOF-publication weight:3
CSS-citation score:2
Auteurs:International
Authors from:Higher Education
Toegankelijkheid:Open