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The flourishing diversity of models in theoretical morphology: from current practices to future macroevolutionary and bioenvironmental challenges

机译:理论形态模型的蓬勃发展:从当前的实践到未来的宏观进化和生物环境挑战

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摘要

For decades, theoretical morphological studies of different groups of organisms have been successfully pursued in biological, paleontological, and computational contexts, often with distinct modeling approaches and research questions. A regular influx of new perspectives and varied expertise has contributed to the emergence of a veritable multidisciplinary outlook for theoretical morphology. The broadening of this discipline is reflecteel in a substantial increase in the number of models, leading to a bewildering diversity that has yet to be scrutinized. In this work, we tackle this issue in a synthetic fashion, with a quantitative meta-analysis that allows an objective comparison of theoretical morphological models treated as entities. By analogy with empirical morphospace analyses of actual organisms, we performed a multivariate ordination of a representative sample of models, producing a metaspace of models in which patterns of similarity and difference are visualized. A phenetic tree was used to characterize the relationships between models. Four major groups have been identified, and their disparity analyzed. We suggest this typology as a useful starting point to identify a core set of fundamental principles and protocols for better interpretation of the plethora of current models and for more efficient construction of models in the future. This in turn can help in diversifying the scope of macroevolutionary, developmental, and bioenvironmental questions in theoretical morphology.
机译:几十年来,已成功地在生物学,古生物学和计算环境中进行了对不同生物体的理论形态学研究,通常具有独特的建模方法和研究问题。定期涌入的新观点和各种专业知识促成了对理论形态学真正的多学科观点的出现。该学科的扩展反映出模型数量的大量增加,导致令人困惑的多样性尚未得到审查。在这项工作中,我们以定量的荟萃分析以综合的方式解决了这个问题,该方法可以对作为实体的理论形态学模型进行客观比较。通过对实际有机体的经验形态空间分析进行类比,我们对模型的代表性样本进行了多元排序,从而生成了模型的元空间,在其中模型化了相似和差异的模式。物候树用于表征模型之间的关系。确定了四个主要群体,并分析了他们之间的差距。我们建议将这种类型学作为确定一组核心的基本原则和协议的有用起点,以便更好地解释当前模型的多样性并在将来更有效地构建模型。反过来,这有助于使理论形态学中宏观进化,发育和生物环境问题的范围多样化。

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