Simple and conditioned adaptive behavior from Kalman filter trained recurrent networks.

Feldkamp, Lee A; Prokhorov, Danil V; Feldkamp, Timothy M · Neural Netw · 2003

basic_science · Level V

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Abstract

We illustrate the ability of a fixed-weight neural network, trained with Kalman filter methods, to perform tasks that are usually entrusted to an explicitly adaptive system. Following a simple example, we demonstrate that such a network can be trained to exhibit input-output behavior that depends on which of two conditioning tasks was performed a substantial number of time steps in the past. This behavior can also be made to survive an intervening interference task.

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