Unsupervised Pixel-prediction

Softky, William R.

Neural Information Processing Systems 

When a sensory system constructs a model of the environment from its input, it might need to verify the model's accuracy. One method of verification is multivariate time-series prediction: a good model could predict the near-future activity of its inputs, much data. Such a predictingas a good scientific theory predicts future to comparemodel would require copious top-down connections the input. That feedback could improve thethe predictions with model's performance in two ways: by biasing internal activity toward expected patterns, and by generating specific error signals if the predictions fail. A proof-of-concept model-an event-driven, computationally efficient layered network, incorporating "cortical" features like all-excitatory synapses and local inhibition-was constructed to make near-future predictions of a simple, moving stimulus.

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