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The structure of evolved representations across different substrates for artificial intelligence
Michigan State University, East Lansing, United States.ORCID iD: 0000-0002-4872-1961
2020 (English)In: ALIFE 2018 - 2018 Conference on Artificial Life: Beyond AI, MIT Press , 2020, p. 388-395Conference paper (Refereed)
Abstract [en]

Artificial neural networks (ANNs), while exceptionally useful for classification, are vulnerable to misdirection. Small amounts of noise can significantly affect their ability to correctly complete a task. Instead of generalizing concepts, ANNs seem to focus on surface statistical regularities in a given task. Here we compare how recurrent artificial neural networks, long short-term memory units, and Markov Brains sense and remember their environments. We show that information in Markov Brains is localized and sparsely distributed, while the other neural network substrates “smear” information about the environment across all nodes, which makes them vulnerable to noise. Copyright © ALIFE 2018.All rights reserved.

Place, publisher, year, edition, pages
MIT Press , 2020. p. 388-395
Keywords [en]
Artificial life, Different substrates, Recurrent artificial neural networks, Short term memory, Statistical regularity, Recurrent neural networks
National Category
Computer Sciences
Identifiers
URN: urn:nbn:se:du-37159Scopus ID: 2-s2.0-85084755784OAI: oai:DiVA.org:du-37159DiVA, id: diva2:1557925
Conference
2018 Conference on Artificial Life: Beyond AI, ALIFE 2018, 23 July 2018 - 27 July 2018
Available from: 2021-05-27 Created: 2021-05-27 Last updated: 2021-05-27Bibliographically 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
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  • Other style
More styles
Language
  • de-DE
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  • en-US
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  • nn-NO
  • nn-NB
  • sv-SE
  • Other locale
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Output format
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  • asciidoc
  • rtf