Utilize este identificador para referenciar este registo: https://hdl.handle.net/1822/51452

TítuloContextual covariance matrix adaptation evolutionary strategies
Autor(es)Abdolmaleki, Abbas
Price, Bob
Lau, Nuno
Reis, L. P.
Neumann, Gerhard
Data2017
EditoraInternational Joint Conferences on Artificial Intelligence Organization (IJCAI)
RevistaIJCAI International Joint Conference on Artificial Intelligence
Resumo(s)Many stochastic search algorithms are designed to optimize a fixed objective function to learn a task, i.e., if the objective function changes slightly, for example, due to a change in the situation or context of the task, relearning is required to adapt to the new context. For instance, if we want to learn a kicking movement for a soccer robot, we have to relearn the movement for different ball locations. Such relearning is undesired as it is highly inefficient and many applications require a fast adaptation to a new context/situation. Therefore, we investigate contextual stochastic search algorithms that can learn multiple, similar tasks simultaneously. Current contextual stochastic search methods are based on policy search algorithms and suffer from premature convergence and the need for parameter tuning. In this paper, we extend the well known CMA-ES algorithm to the contextual setting and illustrate its performance on several contextual tasks. Our new algorithm, called contextual CMAES, leverages from contextual learning while it preserves all the features of standard CMA-ES such as stability, avoidance of premature convergence, step size control and a minimal amount of parameter tuning.
TipoArtigo em ata de conferência
URIhttps://hdl.handle.net/1822/51452
ISBN9780999241103
e-ISBN978−0−9992411−0−3
DOI10.24963/ijcai.2017/191
ISSN1045-0823
Versão da editorahttps://www.ijcai.org/proceedings/2017/
Arbitragem científicayes
AcessoAcesso aberto
Aparece nas coleções:DSI - Engenharia da Programação e dos Sistemas Informáticos

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