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State-of-the-art and recent progress in phytoplankton succession modelling

机译:浮游植物演替建模的最新技术和最新进展

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Dynamic phytoplankton succession models are an essential instrument to improve scientific knowledge on the development of algal blooms characterized by a specific composition and to support water quality management decisions. The peculiar structure and formulation of these models generate questions that differ from the ones found in modelling eutrophication and are related to simulation of multiple phytoplankton groups. In this work, a classification of phytoplankton models simulating several algal groups is provided. Coupled succession models, explicitly describing nonlinear interactions between physical and biological processes and capturing the response of phytoplankton community to environmental changes, are analyzed in detail. Approaches, actual achievements, and developments of succession models are examined. In particular, we discuss the level of discrimination adopted, number and type of algal groups simulated, biomass unit employed, type of model evaluation used, and efficacy of predictionachieved. Simulations of multiple phytoplankton group behaviour still produce significant deviations over time or in magnitude compared to the patterns observed. Frequently, goodness-of-fit estimation is only graphical and statistics adopted do not allow a direct comparison between different models. To facilitate comparisons we propose the use of a common statistic that would be applied, separately, to all the phytoplankton groups differentiated in each model. Each model’s level of complexity in relation to prediction ability is also analyzed. Through this work we aspire to orient upcoming works and encourage others to apply mechanistic succession models, including the description of physical and biological relationships, specific phytoplankton behaviour and interactions between phytoplankton groups.
机译:动态浮游植物演替模型是提高关于以特定成分为特征的藻华发展的科学知识并支持水质管理决策的重要工具。这些模型的特殊结构和公式产生的问题与富营养化建模中发现的问题不同,并且与多个浮游植物群的仿真有关。在这项工作中,提供了模拟几种藻类的浮游植物模型的分类。详细分析了耦合演替模型,这些演替模型明确描述了物理和生物过程之间的非线性相互作用并捕获了浮游植物群落对环境变化的响应。研究了继承模型的方法,实际成就和发展。特别是,我们讨论了所采用的区分度,模拟的藻类组的数量和类型,所采用的生物量单位,所使用的模型评估的类型以及所达到的预测效果。与观察到的模式相比,多种浮游植物行为的模拟仍会随时间或幅度产生明显的偏差。通常,拟合优度估计只是图形化的,采用的统计数据不允许在不同模型之间进行直接比较。为了便于进行比较,我们建议使用一种共同的统计数据,该统计数据将分别应用于每个模型中区分出的所有浮游植物组。还分析了每个模型相对于预测能力的复杂程度。通过这项工作,我们希望确定即将到来的工作的方向,并鼓励其他人使用机械演替模型,包括对物理和生物学关系,特定浮游植物行为以及浮游植物群之间相互作用的描述。

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