论文标题

在环境变异性下的可塑性和可发展性:基于健身的选择和利基限制竞争的共同作用

Plasticity and evolvability under environmental variability: the joint role of fitness-based selection and niche-limited competition

论文作者

Nisioti, Eleni, Moulin-Frier, Clément

论文摘要

自然系统的多样性和质量一直是研究人造生活的社区的难题和灵感。现在,人们普遍承认,使这些特性的适应机制在很大程度上受其居住环境的影响。面临环境变异性的生物具有在不同时间尺度上运行的两种替代适应机制:\ textIt {可塑性},这是表型在多种环境中生存的能力和\ textit {EvolDobility},即通过突变适应的能力。尽管在环境变异性下至关重要,但两种机制都与假设在稳定环境中不必要的健身成本相关。在这项工作中,我们研究了可塑性和可变性进化模型中环境动力学与适应性之间的相互作用。我们尝试以不同类型的环境为特征,其特征是存在壁ni和确定适应性景观的气候功能。我们从经验上表明,环境动力学对可塑性和进化性的影响有所不同,并且即使在稳定的环境中,各种生态壁ches的存在也会影响适应性。我们对选择机制进行消融研究,以区分基于健身的选择和利基限制竞争的作用。从我们的最低模型中获得的结果使我们能够在生物和人工系统的开放性研究中提出有前途的研究方向。

The diversity and quality of natural systems have been a puzzle and inspiration for communities studying artificial life. It is now widely admitted that the adaptation mechanisms enabling these properties are largely influenced by the environments they inhabit. Organisms facing environmental variability have two alternative adaptation mechanisms operating at different timescales: \textit{plasticity}, the ability of a phenotype to survive in diverse environments and \textit{evolvability}, the ability to adapt through mutations. Although vital under environmental variability, both mechanisms are associated with fitness costs hypothesized to render them unnecessary in stable environments. In this work, we study the interplay between environmental dynamics and adaptation in a minimal model of the evolution of plasticity and evolvability. We experiment with different types of environments characterized by the presence of niches and a climate function that determines the fitness landscape. We empirically show that environmental dynamics affect plasticity and evolvability differently and that the presence of diverse ecological niches favors adaptability even in stable environments. We perform ablation studies of the selection mechanisms to separate the role of fitness-based selection and niche-limited competition. Results obtained from our minimal model allow us to propose promising research directions in the study of open-endedness in biological and artificial systems.

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