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Analysis of ecosystem structure and function: extended path and flow analysis of a steady-state oyster reef model

机译:生态系统结构和功能分析:稳态牡蛎礁模型的扩展路径和流量分析

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An analysis of the extended path and flow structure of a six compartment steady-state oyster reef model was conducted. The extended path and flow structure were analyzed in the context of a refined canonical path classification system based on the systems theory methods of environ and network unfolding analyses. A computer implementation of an operational path classification system facilitated investigation of a finite portion (path length less than or equal to 17 arcs) of the direct and indirect path structure of the oyster reef model. Important results of the path structure analysis include: (1) few simple paths and large numbers of compound paths enumerated; (2) dominance of path numbers by subsequent passage terminal cycle paths; (3) structural evidence in support of feedback control in ecosystems; (4) results provide evidence by analogy to support the hypothesis of network homogenization first described using the systems analysis methods of environ analysis and network unfolding; (5) constancy of the pattern of origin-destination path counts with increasing path length; (6) importance of nonliving compartments in the extended path structure of ecosystems. Simultaneous path and flow analysis of the oyster reef model assessed the flow contributions of the fundamental path categories for this model using a modification of a path-based network unfolding method. First passage paths contribute most of the flow; however, multiple passage cyclic paths also provide a large (22%) flow contribution. Because of cycling in the system, the numerous long paths in the extended path structure of this ecosystem model are significant in its function as represented by the flows. These results provide microscopic evidence for the macroscopic results of environ analysis that implicate cycling as a key ecosystem attribute in the mechanisms of holistic system determination. The principles enunciated here for a model with a low cycling index (11%) carry over to, and would be even more significant for, models with high cycling indexes. These results also serve to form a link between the extended structure of food webs and their functioning as represented by energy-matter flows. The present analysis demonstrates that extended path structure, and the component articulation from which it is generated, have significant consequences for ecosystem function.
机译:对六室稳态牡蛎礁模型的扩展路径和流动结构进行了分析。基于环境和网络展开分析的系统理论方法,在完善的规范路径分类系统的背景下分析了扩展路径和流动结构。操作路径分类系统的计算机实现有助于研究牡蛎礁模型的直接和间接路径结构的有限部分(路径长度小于或等于17弧)。路径结构分析的重要结果包括:(1)列举了一些简单的路径和大量的复合路径; (2)通过随后的通道末端循环路径来控制路径编号; (3)支持生态系统反馈控制的结构证据; (4)结果以类推提供了证据,以支持首先使用环境分析和网络展开的系统分析方法描述的网络同质化假设; (5)随着路径长度的增加,原点-目的地路径计数模式的恒定性; (6)非生物区隔在生态系统扩展路径结构中的重要性。牡蛎礁模型的同时路径和流量分析使用基于路径的网络展开方法的修改,评估了该模型的基本路径类别的流量贡献。第一通道通过了大部分流量。但是,多通道循环路径也提供了很大的流量贡献(22%)。由于系统中的循环,该生态系统模型的扩展路径结构中的许多长路径在其功能方面表现出重要意义,如流程所示。这些结果为环境分析的宏观结果提供了微观证据,这表明循环是整体系统确定机制中的关键生态系统属性。此处针对低循环指数(11%)的模型阐述的原理会延续到具有高循环指数的模型,甚至会更有意义。这些结果还有助于在食物网的扩展结构与其功能(如能量流)之间建立联系。本分析表明,扩展的路径结构以及从中生成的路径对生态系统功能具有重要影响。

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