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Changing philosophies and tools for statistical inferences in behavioral ecology

期刊

BEHAVIORAL ECOLOGY
卷 20, 期 6, 页码 1363-1375

出版社

OXFORD UNIV PRESS INC
DOI: 10.1093/beheco/arp137

关键词

BeStat; Bonferroni correction; frequentist approach; information theoretic approach; measurement error; model selection; P value; prior; statistical power

资金

  1. Research Foundation, Flanders (Fonds Wetenschappelijk Onderzoek, Vlaanderen, Belgium)
  2. Spanish National Research Council (Consejo Superior de Investigaciones Cientificas, Spain)
  3. University of Otago
  4. Australian Research Council
  5. Deutsche Forschungsgemeinschaft [FO 340/2]

向作者/读者索取更多资源

Recent developments in ecological statistics have reached behavioral ecology, and an increasing number of studies now apply analytical tools that incorporate alternatives to the conventional null hypothesis testing based on significance levels. However, these approaches continue to receive mixed support in our field. Because our statistical choices can influence research design and the interpretation of data, there is a compelling case for reaching consensus on statistical philosophy and practice. Here, we provide a brief overview of the recently proposed approaches and open an online forum for future discussion (https://bestat.ecoinformatics.org). From the perspective of practicing behavioral ecologists relying on either correlative or experimental data, we review the most relevant features of information theoretic approaches, Bayesian inference, and effect size statistics. We also discuss concerns about data quality, missing data, and repeatability. We emphasize the necessity of moving away from a heavy reliance on statistical significance while focusing attention on biological relevance and effect sizes, with the recognition that uncertainty is an inherent feature of biological data. Furthermore, we point to the importance of integrating previous knowledge in the current analysis, for which novel approaches offer a variety of tools. We note, however, that the drawbacks and benefits of these approaches have yet to be carefully examined in association with behavioral data. Therefore, we encourage a philosophical change in the interpretation of statistical outcomes, whereas we still retain a pluralistic perspective for making objective statistical choices given the uncertainties around different approaches in behavioral ecology. We provide recommendations on how these concepts could be made apparent in the presentation of statistical outputs in scientific papers.

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