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Sequential Poisson Regression in Diffusion Networks

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    0524262 - ÚTIA 2021 RIV US eng J - Journal Article
    Dedecius, Kamil - Žemlička, R.
    Sequential Poisson Regression in Diffusion Networks.
    IEEE Signal Processing Letters. Roč. 27, č. 1 (2020), s. 625-629. ISSN 1070-9908. E-ISSN 1558-2361
    Institutional support: RVO:67985556
    Keywords : diffusion * distributed estimation * Poisson regression
    OECD category: Electrical and electronic engineering
    Impact factor: 3.109, year: 2020
    Method of publishing: Limited access
    http://library.utia.cas.cz/separaty/2020/AS/dedecius-0524262.pdf https://ieeexplore.ieee.org/document/9066870

    The Poisson regression is a popular model for positive integer random variables determined by known explanatory variables. This letter studies the problem of its collaborative Bayesian sequential estimation under potentially slowly time-varying regression coefficients. We assume networks where agents share their information about the inferred quantities with adjacent neighbors in order to improve the overall estimation performance. The communication strategy is the information diffusion, i.e., only one information exchange per time instant is allowed.
    Permanent Link: http://hdl.handle.net/11104/0308918

     
     
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