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Imitation of honey bees' concept learning processes using Vector Symbolic Architectures
Department of Computer Science Electrical and Space Engineering, Luleå University of Technology, Luleå, Sweden.ORCID iD: 0000-0002-6032-6155
Department of Computer Science Electrical and Space Engineering, Luleå University of Technology, Luleå, Sweden.
Independent Researcher, Melbourne, Victoria, Australia.
Clayton School of Information Technology, Monash University, Clayton, Victoria, Australia.
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2015 (English)In: Biologically Inspired Cognitive Architectures, ISSN 2212-683X, E-ISSN 2212-6848, Vol. 14, p. 57-72Article in journal (Refereed) Published
Abstract [en]

This article presents a proof-of-concept validation of the use of Vector Symbolic Architectures as central component of an online learning architectures. It is demonstrated that Vector Symbolic Architectures enable the structured combination of features/relations that have been detected by a perceptual circuitry and allow such relations to be applied to novel structures without requiring the massive training needed for classical neural networks that depend on trainable connections.

The system is showcased through the functional imitation of concept learning in honey bees. Data from real-world experiments with honey bees (Avarguès-Weber et al., 2012) are used for benchmarking. It is demonstrated that the proposed pipeline features a similar learning curve and accuracy of generalization to that observed for the living bees. The main claim of this article is that there is a class of simple artificial systems that reproduce the learning behaviors of certain living organisms without requiring the implementation of computationally intensive cognitive architectures. Consequently, it is possible in some cases to implement rather advanced cognitive behavior using simple techniques.

Place, publisher, year, edition, pages
Elsevier, 2015. Vol. 14, p. 57-72
Keywords [en]
Vector Symbolic Architecture, hyperdimensional computing, distributed data representation, concept learning, cognition, inference
National Category
Computer Sciences
Identifiers
URN: urn:nbn:se:oru:diva-116433DOI: 10.1016/j.bica.2015.09.002ISI: 000365060100005Scopus ID: 2-s2.0-84945980580OAI: oai:DiVA.org:oru-116433DiVA, id: diva2:1902065
Funder
The Swedish Foundation for International Cooperation in Research and Higher Education (STINT), IG2011-2025Available from: 2024-10-01 Created: 2024-10-01 Last updated: 2024-10-04Bibliographically approved

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Kleyko, Denis

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