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A Non-Parametric Bayesian Prior For Causal Inference Of Auditory Streaming
[article]
2017
bioRxiv
pre-print
Human perceptual grouping of sequential auditory cues has traditionally been modeled using a mechanistic approach. The problem however is essentially one of source inference - a problem that has recently been tackled using statistical Bayesian models in visual and auditory-visual modalities. Usually the models are restricted to performing inference over just one or two possible sources, but human perceptual systems have to deal with much more complex scenarios. To characterize human perception
doi:10.1101/139188
fatcat:n7vim2zi5nhffalyg4ygsgjvsi