Počet záznamů: 1  

Fusion of Probabilistic Unreliable Indirect Information into Estimation Serving to Decision Making

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    0543464 - ÚTIA 2022 RIV DE eng J - Článek v odborném periodiku
    Kárný, Miroslav - Hůla, František
    Fusion of Probabilistic Unreliable Indirect Information into Estimation Serving to Decision Making.
    International Journal of Machine Learning and Cybernetics. Roč. 12, č. 12 (2021), s. 3367-3378. ISSN 1868-8071. E-ISSN 1868-808X
    Grant CEP: GA MŠMT(CZ) LTC18075
    Grant ostatní: The European Cooperation in Science and Technology (COST)(XE) CA16228
    Institucionální podpora: RVO:67985556
    Klíčová slova: distributed data fusion * information fusion * Bayesian paradigm * decision making * parameter estimation * multi-agent
    Obor OECD: Computer sciences, information science, bioinformathics (hardware development to be 2.2, social aspect to be 5.8)
    Impakt faktor: 4.377, rok: 2021
    Způsob publikování: Omezený přístup
    http://library.utia.cas.cz/separaty/2021/AS/karny-0543464.pdf https://link.springer.com/article/10.1007/s13042-021-01359-9

    Bayesian decision making (DM) quantifies information by the probability density (pd) of treated variables. Gradual accumulation of information during acting increases the DM quality reachable by an agent exploiting it. The inspected accumulation way uses a parametric model forecasting observable DM outcomes and updates the posterior pd of its unknown parameter. In the thought multi-agent case, a neighbouring agent, moreover, provides a privately-designed pd forecasting the same observation. This pd may notably enrich the information of the focal agent. Bayes' rule is a unique deductive tool for a lossless compression of the information brought by the observations. It does not suit to processing of the forecasting pd. The paper extends solutions of this case. It: a) refines the Bayes'-rule-like use of the neighbour's forecasting pd. b) deductively complements former solutions so that the learnable neighbour's reliability can be taken into account. c) specialises the result to the exponential family, which shows the high potential of this information processing. d) cares about exploiting population statistics.
    Trvalý link: http://hdl.handle.net/11104/0320767

     
     
Počet záznamů: 1  

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