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Artificial intelligence in peer review: How can evolutionary computation support journal editors?

Author

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  • Maciej J Mrowinski
  • Piotr Fronczak
  • Agata Fronczak
  • Marcel Ausloos
  • Olgica Nedic

Abstract

With the volume of manuscripts submitted for publication growing every year, the deficiencies of peer review (e.g. long review times) are becoming more apparent. Editorial strategies, sets of guidelines designed to speed up the process and reduce editors’ workloads, are treated as trade secrets by publishing houses and are not shared publicly. To improve the effectiveness of their strategies, editors in small publishing groups are faced with undertaking an iterative trial-and-error approach. We show that Cartesian Genetic Programming, a nature-inspired evolutionary algorithm, can dramatically improve editorial strategies. The artificially evolved strategy reduced the duration of the peer review process by 30%, without increasing the pool of reviewers (in comparison to a typical human-developed strategy). Evolutionary computation has typically been used in technological processes or biological ecosystems. Our results demonstrate that genetic programs can improve real-world social systems that are usually much harder to understand and control than physical systems.

Suggested Citation

  • Maciej J Mrowinski & Piotr Fronczak & Agata Fronczak & Marcel Ausloos & Olgica Nedic, 2017. "Artificial intelligence in peer review: How can evolutionary computation support journal editors?," PLOS ONE, Public Library of Science, vol. 12(9), pages 1-11, September.
  • Handle: RePEc:plo:pone00:0184711
    DOI: 10.1371/journal.pone.0184711
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    References listed on IDEAS

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    1. Adrian Mulligan & Louise Hall & Ellen Raphael, 2013. "Peer review in a changing world: An international study measuring the attitudes of researchers," Journal of the American Society for Information Science and Technology, Association for Information Science & Technology, vol. 64(1), pages 132-161, January.
    2. Adrian Mulligan & Louise Hall & Ellen Raphael, 2013. "Peer review in a changing world: An international study measuring the attitudes of researchers," Journal of the Association for Information Science & Technology, Association for Information Science & Technology, vol. 64(1), pages 132-161, January.
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    5. Vivian M Nguyen & Neal R Haddaway & Lee F G Gutowsky & Alexander D M Wilson & Austin J Gallagher & Michael R Donaldson & Neil Hammerschlag & Steven J Cooke, 2015. "How Long Is Too Long in Contemporary Peer Review? Perspectives from Authors Publishing in Conservation Biology Journals," PLOS ONE, Public Library of Science, vol. 10(8), pages 1-20, August.
    6. Maciej J. Mrowinski & Agata Fronczak & Piotr Fronczak & Olgica Nedic & Marcel Ausloos, 2016. "Review time in peer review: quantitative analysis and modelling of editorial workflows," Scientometrics, Springer;Akadémiai Kiadó, vol. 107(1), pages 271-286, April.
    7. Ausloos, Marcel & Nedic, Olgica & Dekanski, Aleksandar, 2016. "Day of the week effect in paper submission/acceptance/rejection to/in/by peer review journals," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 456(C), pages 197-203.
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    Cited by:

    1. Thomas Feliciani & Junwen Luo & Lai Ma & Pablo Lucas & Flaminio Squazzoni & Ana Marušić & Kalpana Shankar, 2019. "A scoping review of simulation models of peer review," Scientometrics, Springer;Akadémiai Kiadó, vol. 121(1), pages 555-594, October.
    2. Marcel Ausloos & Olgica Nedič & Aleksandar Dekanski, 2019. "Correlations between submission and acceptance of papers in peer review journals," Scientometrics, Springer;Akadémiai Kiadó, vol. 119(1), pages 279-302, April.
    3. Maciej J. Mrowinski & Agata Fronczak & Piotr Fronczak & Olgica Nedic & Aleksandar Dekanski, 2020. "The hurdles of academic publishing from the perspective of journal editors: a case study," Scientometrics, Springer;Akadémiai Kiadó, vol. 125(1), pages 115-133, October.

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