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The evolution of neuroplasticity and the effect on integrated information
Michigan State University, East Lansing, United States.ORCID iD: 0000-0002-4872-1961
2019 (English)In: Entropy, E-ISSN 1099-4300, Vol. 21, no 5, article id 524Article in journal (Refereed) Published
Abstract [en]

Information integration theory has been developed to quantify consciousness. Since conscious thought requires the integration of information, the degree of this integration can be used as a neural correlate (Φ) with the intent to measure degree of consciousness. Previous research has shown that the ability to integrate information can be improved by Darwinian evolution. The value Φ can change over many generations, and complex tasks require systems with at least a minimum Φ. This work was done using simple animats that were able to remember previous sensory inputs, but were incapable of fundamental change during their lifetime: actions were predetermined or instinctual. Here, we are interested in changes to Φ due to lifetime learning (also known as neuroplasticity). During lifetime learning, the system adapts to perform a task and necessitates a functional change, which in turn could change Φ. One can find arguments to expect one of three possible outcomes: Φ might remain constant, increase, or decrease due to learning. To resolve this, we need to observe systems that learn, but also improve their ability to learn over the many generations that Darwinian evolution requires. Quantifying Φ over the course of evolution, and over the course of their lifetimes, allows us to investigate how the ability to integrate information changes. To measure Φ, the internal states of the system must be experimentally observable. However, these states are notoriously difficult to observe in a natural system. Therefore, we use a computational model that not only evolves virtual agents (animats), but evolves animats to learn during their lifetime. We use this approach to show that a system that improves its performance due to feedback learning increases its ability to integrate information. In addition, we show that a system's ability to increase Φ correlates with its ability to increase in performance. This suggests that systems that are very plastic regarding Φ learn better than those that are not. © 2019 by the authors.

Place, publisher, year, edition, pages
MDPI AG , 2019. Vol. 21, no 5, article id 524
Keywords [en]
Autonomous learning, Information integration theory, Neuroevolution
National Category
Computer Sciences Bioinformatics and Computational Biology
Identifiers
URN: urn:nbn:se:du-37163DOI: 10.3390/e21050524Scopus ID: 2-s2.0-85066610996OAI: oai:DiVA.org:du-37163DiVA, id: diva2:1557921
Available from: 2021-05-27 Created: 2021-05-27 Last updated: 2025-10-09Bibliographically approved

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Hintze, Arend

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CiteExportLink to record
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Cite
Citation style
  • apa
  • ieee
  • modern-language-association-8th-edition
  • vancouver
  • chicago-author-date
  • chicago-note-bibliography
  • Other style
More styles
Language
  • de-DE
  • en-GB
  • en-US
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  • nn-NO
  • nn-NB
  • sv-SE
  • Other locale
More languages
Output format
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  • asciidoc
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