Will the neural blackboard architecture scale up to semantics?

Behavioral and Brain Sciences 29 (1):77-78 (2006)
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Abstract

The neural blackboard architecture is a localist structured connectionist model that employs a novel connection matrix to implement dynamic bindings without requiring propagation of temporal synchrony. Here I note the apparent need for many distinct matrices and the effect this might have for scale-up to semantic processing. I also comment on the authors' initial foray into the symbol grounding problem.

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