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Neural surprise in somatosensory Bayesian learning
2021
Tracking statistical regularities of the environment is important for shaping human behavior and perception. Evidence suggests that the brain learns environmental dependencies using Bayesian principles. However, much remains unknown about the employed algorithms, for somesthesis in particular. Here, we describe the cortical dynamics of the somatosensory learning system to investigate both the form of the generative model as well as its neural surprise signatures. Specifically, we recorded EEG
doi:10.17169/refubium-30298
fatcat:35jggvgchjfevicsj4x4qdlodm