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Learning and adaptation of strategies in automated negotiations between context-aware agents

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Tag12Value
LDR  00000cab a2200000 4500
001  MAP20240013226
003  MAP
005  20240829095647.0
008  240829e20240619esp|||p |0|||b|eng d
040  ‎$a‎MAP‎$b‎spa‎$d‎MAP
084  ‎$a‎922.134
1001 ‎$0‎MAPA20240020774‎$a‎Kröhling, Dan Ezequiel
24510‎$a‎Learning and adaptation of strategies in automated negotiations between context-aware agents‎$c‎ By Dan Ezequiel Kröhling, Omar J. A. Chiotti and Ernesto C. Martínez
520  ‎$a‎This work presents the hypothesis that guided the research efforts and a summary of the contributions of the doctoral thesis '`Aprendizaje y adaptación de estrategias para negociación automatizada entre agentes conscientes del contexto'. Succinctly, the thesis focuses on agents for automated bilateral negotiations that make use of the context as a key source of information to learn and adapt negotiation strategies in two levels of temporal abstraction. At the highest level, agents employ reinforcement learning to select strategies according to contextual circumstances. At the lowest level, agents use Gaussian Processes and artificial Theory of Mind to model their opponents and adapt their strategies. Agents are then tested in two Peer-to-Peer markets comprising an Eco-Industrial Park and a Smart Grid. The results highlight the significance for the automation of bilateral negotiations of incorporating the context as an informative source
650 4‎$0‎MAPA20080568009‎$a‎Automatización
650 4‎$0‎MAPA20080611200‎$a‎Inteligencia artificial
650 4‎$0‎MAPA20080559694‎$a‎Negociación
7001 ‎$0‎MAPA20240020781‎$a‎Chiotti, Omar J. A.
7001 ‎$0‎MAPA20240020798‎$a‎Martínez, Ernesto C.
7730 ‎$w‎MAP20200034445‎$g‎19/06/2024 Volumen 27 Número 73 - junio 2024 , p. 159-162‎$x‎1988-3064‎$t‎Revista Iberoamericana de Inteligencia Artificial‎$d‎ : IBERAMIA, Sociedad Iberoamericana de Inteligencia Artificial , 2018-
856  ‎$u‎https://journal.iberamia.org/index.php/intartif/article/view/1305