1000 resultados para Agent régulateur


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L’agent régulateur des temps sociaux de la famille québécoise a été la religion catholique pendant des décennies. Les mouvements d’après-guerre et la Révolution tranquille, ont amené un changement de paradigme avec la laïcisation des institutions et la multiplication des programmes sociaux de l’État-providence. Pour cerner l’importance de ce changement, nous avons utilisé la clef analytique de Léon Gérin pour produire une analyse comparative entre deux familles à deux époques : en 1886 et en 2010. Or, au moment où l’État est de plus en plus présent dans toutes les sphères de la vie de la famille tout en leur laissant une autonomie et une liberté, la population se montre de plus en plus sceptique envers les institutions étatiques. Un fossé s’est créé entre la société officielle, celle du social, des institutions, et la société officieuse, celle de la culture populaire qui agit à partir de l’esprit de corps de son groupe, virtuel ou non. La crise de confiance des gens envers les institutions annonce un nouveau changement de paradigme. La rationalité qui a été le moteur de la modernité fait graduellement place à l’émotionnel et à la valeur du temps présent. Le travail, agent régulateur qui comblait les besoins matériels à la modernité, serait remplacé progressivement par des besoins immatériels devenant l’agent régulateur des temps sociaux de la famille.

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The New Zealand green lipped mussel preparation Lyprinol is available without a prescription from a supermarket, pharmacy or Web. The Food and Drug Administration have recently warned Lyprinol USA about their extravagant anti-inflammatory claims for Lyprinol appearing on the web. These claims are put to thorough review. Lyprinol does have anti-inflammatory mechanisms, and has anti-inflammatory effects in some animal models of inflammation. Lyprinol may have benefits in dogs with arthritis. There are design problems with the clinical trials of Lyprinol in humans as an anti-inflammatory agent in osteoarthritis and rheumatoid arthritis, making it difficult to give a definite answer to how effective Lyprinol is in these conditions, but any benefit is small. Lyprinol also has a small benefit in atopic allergy. As anti-inflammatory agents, there is little to choose between Lyprinol and fish oil. No adverse effects have been reported with Lyprinol. Thus, although it is difficult to conclude whether Lyprinol does much good, it can be concluded that Lyprinol probably does no major harm.

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The load–frequency control (LFC) problem has been one of the major subjects in a power system. In practice, LFC systems use proportional–integral (PI) controllers. However since these controllers are designed using a linear model, the non-linearities of the system are not accounted for and they are incapable of gaining good dynamical performance for a wide range of operating conditions in a multi-area power system. A strategy for solving this problem because of the distributed nature of a multi-area power system is presented by using a multi-agent reinforcement learning (MARL) approach. It consists of two agents in each power area; the estimator agent provides the area control error (ACE) signal based on the frequency bias estimation and the controller agent uses reinforcement learning to control the power system in which genetic algorithm optimisation is used to tune its parameters. This method does not depend on any knowledge of the system and it admits considerable flexibility in defining the control objective. Also, by finding the ACE signal based on the frequency bias estimation the LFC performance is improved and by using the MARL parallel, computation is realised, leading to a high degree of scalability. Here, to illustrate the accuracy of the proposed approach, a three-area power system example is given with two scenarios.

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An adaptive agent improves its performance by learning from experience. This paper describes an approach to adaptation based on modelling dynamic elements of the environment in order to make predictions of likely future state. This approach is akin to an elite sports player being able to “read the play”, allowing for decisions to be made based on predictions of likely future outcomes. Modelling of the agent‟s likely future state is performed using Markov Chains and a technique called “Motion and Occupancy Grids”. The experiments in this paper compare the performance of the planning system with and without the use of this predictive model. The results of the study demonstrate a surprising decrease in performance when using the predictions of agent occupancy. The results are derived from statistical analysis of the agent‟s performance in a high fidelity simulation of a world leading real robot soccer team.