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Stimulus domain transfer in recurrent models for large scale cortical population prediction on video
[article]
2018
bioRxiv
pre-print
AbstractTo better understand the representations in visual cortex, we need to generate better predictions of neural activity in awake animals presented with their ecological input: natural video. Despite recent advances in models for static images, models for predicting responses to natural video are scarce and standard linear-nonlinear models perform poorly. We developed a new deep recurrent network architecture that predicts inferred spiking activity of thousands of mouse V1 neurons
doi:10.1101/452672
fatcat:h76tdjq4c5fvnhnryqr6s63cwm