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Titlebook: Computational Modeling of Neural Activities for Statistical Inference; Antonio Kolossa Book 2016 Springer International Publishing Switzer

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書目名稱Computational Modeling of Neural Activities for Statistical Inference
編輯Antonio Kolossa
視頻videohttp://file.papertrans.cn/233/232821/232821.mp4
概述Provides empirical evidence for the Bayesian brain hypothesis.Presents observer models which are useful to compute probability distributions over observable events and hidden states.Helps the reader t
圖書封面Titlebook: Computational Modeling of Neural Activities for Statistical Inference;  Antonio Kolossa Book 2016 Springer International Publishing Switzer
描述.This authored monograph supplies empirical evidence for the Bayesian brain hypothesis by?modeling event-related potentials (ERP) of the human electroencephalogram (EEG)?during successive trials in cognitive tasks. The employed observer models are useful to compute?probability distributions over observable events and hidden states, depending on?which are present in the respective tasks. Bayesian?model selection is then used to choose the model which best explains the ERP amplitude?fluctuations.?Thus, this book constitutes a decisive step towards a better understanding of the neural coding and computing of probabilities following Bayesian rules.?The target audience primarily comprises research experts in the field of computational neurosciences, but the book may also be beneficial for graduate students who want to specialize in this field..?.
出版日期Book 2016
關(guān)鍵詞Event-related potentials; Digital filtering model; Design matrices for model estimation; Bayesian obser
版次1
doihttps://doi.org/10.1007/978-3-319-32285-8
isbn_softcover978-3-319-81243-4
isbn_ebook978-3-319-32285-8
copyrightSpringer International Publishing Switzerland 2016
The information of publication is updating

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Zuordnung der Patienten zu den Varianten,When conducting interdisciplinary research, the employed methods may not be common knowledge in all involved fields. This chapter serves to make this work accessible to a wide audience by describing in detail the methods used formodel estimation and selection.
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https://doi.org/10.1007/978-3-319-32285-8Event-related potentials; Digital filtering model; Design matrices for model estimation; Bayesian obser
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