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Published November 1995 | public
Journal Article

The ascending neuromodulatory systems in learning by reinforcement: comparing computational conjectures with experimental findings

Abstract

A central problem in cognitive neuroscience is how animals can manage to rapidly master complex sensorimotor tasks when the only sensory feedback they use to improve their performance is a simple reinforcing stimulus. Neural network theorists have constructed algorithms for reinforcement learning that can be used to solve a variety of biological problems and do not violate basic neurophysiological principles, in contrast to the back-propagation algorithm. A key assumption in these models is the existence of a reinforcement signal, which would be diffusively broadcast throughout one or several brain areas engaged in learning. This signal is further assumed to mediate up- and downward changes in synaptic efficacy by acting as a multiplicative factor in learning rules. The biological plausibility of these algorithms has been defended by the conjecture that the neuromodulators noradrenaline, acetylcholine or dopamine may form the neurochemical substrate of reinforcement signals. In this commentary, the predictions raised by this hypothesis are compared to anatomical, electrophysiological and behavioural findings. The experimental evidence does not support, and often argues against, a general reinforcement-encoding function of these neuromodulatory systems. Nevertheless, the broader concept of evaluative signalling between brain structures implied in learning appears to be reasonable and the available algorithms may open new avenues for constructing more realistic network architectures.

Additional Information

© 1996 Elsevier. Accepted 27 November 1995. I would like to thank J.J. Hopfield for his stimulating advice during the course of this research project and F.H. Lopes da Silva, J. van Pelt, A. van Ooijen for their critical reading of the manuscript. This project was supported by a Talent Fellowship of the Netherlands Organization for Scientific Research.

Additional details

Created:
August 22, 2023
Modified:
October 25, 2023