Searched for: subject%3A%22Agent%22
(1 - 4 of 4)
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van Tilburg, Jasper (author), Cavalcante Siebert, L. (author), Cremer, Jochen (author)
This paper presents a decentralized Multi-Agent Reinforcement Learning (MARL) approach to an incentive-based Demand Response (DR) program, which aims to maintain the capacity limits of the electricity grid and prevent grid congestion by financially incentivizing residential consumers to reduce their energy consumption. The proposed approach...
conference paper 2023
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Cavalcante Siebert, L. (author), Aoki, Alexandre R (author), Lambert-Torres, Germano (author), Lambert-de-Andrada, Nelson (author), Paterakis, Nikolaos G. (author)
Recent developments, such as smart metering, distributed energy resources, microgrids, and energy storage, have led to an exponential increase in system complexity and have emphasized the need to include customer behavior and social and cultural backgrounds in planning activities. This paper analyzes how emergent behavior in electricity...
journal article 2020
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Cavalcante Siebert, L. (author), Mercuur, R.A. (author), Dignum, M.V. (author), van den Hoven, M.J. (author), Jonker, C.M. (author)
Autonomous agents (AA) will increasingly be interacting with us in our daily lives. While we want the benefits attached to AAs, it is essential that their behavior is aligned with our values and norms. Hence, an AA will need to estimate the values and norms of the humans it interacts with, which is not a straightforward task when solely...
conference paper 2020
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van der Waa, J.S. (author), van Diggelen, Jurriaan (author), Cavalcante Siebert, L. (author), Neerincx, M.A. (author), Jonker, C.M. (author)
Artificially intelligent agents will deal with more morally sensitive situations as the field of AI progresses. Research efforts are made to regulate, design and build Artificial Moral Agents (AMAs) capable of making moral decisions. This research is highly multidisciplinary with each their own jargon and vision, and so far it is unclear...
conference paper 2020
Searched for: subject%3A%22Agent%22
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