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Geometric Significance of Topological Neighborhood in Standard and OscillatingSOM Models
Abstract
The role of Topological Neighborhood (TN) in SOM cognitive modeling has biological and computational implications.The modeling significance of the TN width function (epoch) is associated with the initial TN width parameter 0. Further-more, 0 is decisive in determining the geometric area under the TN-width function curve through the epochs of SOMtraining; measures training ”opportunity”. From this perspective, what is considered narrow (or wide) TN during SOMformation is a function of the TN width area covered.In computer simulations of standard-TN SOM and of our previously proposed oscillating-TN SOM models, we calculatedthe area using the Riemann integral of the corresponding (epoch) function (standard, oscillating) and epoch-interval. Theresults show: a) for the same 0 and epoch-interval, the value remains unchanged irrespective of the (epoch) function used;b) when reducing 0, it reduces and directly affects the SOM representation of the input space.
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