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Complex systems approach to scientific publication and peer-review system: development of an agent-based model calibrated with empirical journal data

机译:用于科学出版和同行评审系统的复杂系统方法:开发基于代理的模型该模型使用经验期刊数据进行校准

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摘要

Scientific peer-review and publication systems incur a huge burden in terms of costs and time. Innovative alternatives have been proposed to improve the systems, but assessing their impact in experimental studies is not feasible at a systemic level. We developed an agent-based model by adopting a unified view of peer review and publication systems and calibrating it with empirical journal data in the biomedical and life sciences. We modeled researchers, research manuscripts and scientific journals as agents. Researchers were characterized by their scientific level and resources, manuscripts by their scientific value, and journals by their reputation and acceptance or rejection thresholds. These state variables were used in submodels for various processes such as production of articles, submissions to target journals, in-house and external peer review, and resubmissions. We collected data for a sample of biomedical and life sciences journals regarding acceptance rates, resubmission patterns and total number of published articles. We adjusted submodel parameters so that the agent-based model outputs fit these empirical data. We simulated 105 journals, 25,000 researchers and 410,000 manuscripts over 10 years. A mean of 33,600 articles were published per year; 19 % of submitted manuscripts remained unpublished. The mean acceptance rate was 21 % after external peer review and rejection rate 32 % after in-house review; 15 % publications resulted from the first submission, 47 % the second submission and 20 % the third submission. All decisions in the model were mainly driven by the scientific value, whereas journal targeting and persistence in resubmission defined whether a manuscript would be published or abandoned after one or many rejections. This agent-based model may help in better understanding the determinants of the scientific publication and peer-review systems. It may also help in assessing and identifying the most promising alternative systems of peer review.
机译:科学的同行评审和发布系统在成本和时间方面都带来巨大负担。已经提出了创新的替代方案来改进系统,但是在系统水平上评估其在实验研究中的影响是不可行的。我们通过采用同行评审和发表系统的统一视图并使用生物医学和生命科学中的经验期刊数据对其进行校准,从而开发了基于代理的模型。我们以研究人员,研究手稿和科学期刊为代理模型。研究人员的特点是其科学水平和资源,手稿的科学价值以及期刊的声誉和接受或拒绝的门槛。这些状态变量在子模型中用于各种过程,例如文章的产生,对目标期刊的提交,内部和外部同行评审以及重新提交。我们收集了有关生物医学和生命科学期刊样本的数据,这些数据涉及接受率,重新投稿方式和已发表文章的总数。我们调整了子模型参数,以使基于代理的模型输出适合这些经验数据。我们在10年中模拟了105种期刊,25,000名研究人员和410,000个手稿。每年平均发表33,600篇文章;已提交手稿的19%仍未出版。外部同行评审后的平均接受率为21%,内部评审后的平均拒绝率为32%;第一次提交的出版物占15%,第二次提交的出版物占47%,第三次提交的出版物占20%。该模型中的所有决策主要由科学价值决定,而期刊的针对性和重新提交的持久性则定义了稿件在被拒绝一次或多次后将被出版还是被放弃。这种基于主体的模型可能有助于更好地理解科学出版和同行评审系统的决定因素。它还可能有助于评估和确定最有希望的同行评审替代系统。

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