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  4. Overcoming Deceptive Rewards with Quality-Diversity
 
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2023
Conference Paper
Title

Overcoming Deceptive Rewards with Quality-Diversity

Abstract
Quality-Diversity offers powerful ideas to create diverse, high-performing populations. Here, we investigate the capabilities these ideas hold to solve exploration-hard single-objective problems, in addition to creating diverse high-performing populations.
We find that MAP-Elites is well suited to overcome deceptive reward structures, while an Elites-type approach with an unstructured, distance based container and extinction events can even outperform it.
Furthermore, we analyse how the QD score, the standard evaluation of MAP-Elites type algorithms, is not well suited to predict the success of a configuration in solving a maze. This shows that the exploration capacity is an entirely different dimension in which QD algorithms can be utilized, evaluated, and improved on. It is a dimension that does not currently seem to be covered, implicitly or explicitly, by the current advances in the field.
Author(s)
Feiden, Arno  orcid-logo
Fraunhofer-Institut für Algorithmen und Wissenschaftliches Rechnen SCAI  
Garcke, Jochen  
Fraunhofer-Institut für Algorithmen und Wissenschaftliches Rechnen SCAI  
Mainwork
GECCO 2023 Companion, Genetic and Evolutionary Computation Conference Companion. Proceedings  
Conference
Genetic and Evolutionary Computation Conference 2023  
DOI
10.1145/3583133.3590741
Language
English
Fraunhofer-Institut für Algorithmen und Wissenschaftliches Rechnen SCAI  
Fraunhofer Group
Fraunhofer-Verbund IUK-Technologie  
Keyword(s)
  • Quality-Diversity

  • Exploration

  • Deception

  • Maze

  • MAP-Elites

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