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Beyond synaptic plasticity: a summary of a linear model of the cerebellar locomotor computation
Mike Gilbert1, Anders Rasmussen2
1School of Psychology, College of Life and Environmental Sciences, University of Birmingham, Birmingham, United Kingdom.
Abstract:
We present a summary of ideas that attempt to explain how the locomotor cerebellum may represent and process information. It includes the proposals that (i) the main network computation is a passive and unlearned effect of cell type morphologies and neural architecture; (ii) information has topographically defined spatial dimensions; (iii) it is coded at collective level, at any instant, in any random sample of functionally grouped signals; (iv) topographical organization extends outside the cerebellum and maps to the peripheral nervous system; and (v) learning and memory are at microzone level and in a supplementary role. The aim is to provide competition for traditional learning models and to challenge some common assumptions. We have found that the main resistance to the proposals is in these areas: loyalty to the traditional model; mathematically, the computation is unexpectedly unsophisticated; on the face of it, the mechanism is resource-heavy; we propose that neuroanatomy automates motor coordination and converts feedback into motor output in real time. Some of the ideas are contentious. We argue, nonetheless, that the proposals can explain the evidence.
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