Reducing Diversity to Generate Hierarchical Archetypes
Ibias, Alfredo, Antona, Hector, Ramirez-Miranda, Guillem, Guinovart, Enric, Alarcon, Eduard
–arXiv.org Artificial Intelligence
The Artificial Intelligence field seldom address the development of a fundamental building piece: a framework, methodology or algorithm to automatically build hierarchies of abstractions. This is a key requirement in order to build intelligent behaviour, as recent neuroscience studies clearly expose. In this paper we present a primitive-based framework to automatically generate hierarchies of constructive archetypes, as a theory of how to generate hierarchies of abstractions. We assume the existence of a primitive with very specific characteristics, and we develop our framework over it. We prove the effectiveness of our framework through mathematical definitions and proofs. Finally, we give a few insights about potential uses of our framework and the expected results.
arXiv.org Artificial Intelligence
Sep-27-2024
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