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A ‘fuzzy clustering’ approach to conceptual confusion: how to classify natural ecological associations

机译:概念混淆的“模糊聚类”方法:如何对自然生态关联进行分类

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摘要

The concept of the marine ecological community has recently experienced renewed attention, mainly owing to a shift in conservation policies from targeting single and specific objec- tives (e.g. species) towards more integrated approaches. Despite the value of communities as dis- tinct entities, e.g. for conservation purposes, there is still an ongoing debate on the nature of spe- cies associations. They are seen either as communities, cohesive units of non-randomly associated and interacting members, or as assemblages, groups of species that are randomly associated. We investigated such dualism using fuzzy logic applied to a large dataset in the German Bight (south- eastern North Sea). Fuzzy logic provides the flexibility needed to describe complex patterns of natural systems. Assigning objects to more than one class, it enables the depiction of transitions, avoiding the rigid division into communities or assemblages. Therefore we identified areas with either structured or random species associations and mapped boundaries between communities or assemblages in this more natural way. We then described the impact of the chosen sampling design on the community identification. Four communities, their core areas and probability of occurrence were identified in the German Bight: AMPHIURA-FILIFORMIS, BATHYPOREIA-TELLINA, GONIADELLA-SPISULA, and PHORONIS. They were assessed by estimating overlap and compactness and supported by analysis of beta-diversity. Overall, 62% of the study area was characterized by high species turnover and instability. These areas are very relevant for conservation issues, but become undetectable when studies choose sampling designs with little information or at small spatial scales.
机译:海洋生态社区的概念最近受到了新的关注,这主要是由于保护政策已从针对单一目标和特定目标(例如物种)转向更加综合的方法。尽管社区具有独特的价值,例如出于保护目的,关于专业协会的性质仍在进行辩论。它们被视为社区,非随机关联和相互作用成员的凝聚力单位,或者被视为随机关联的物种组的集合。我们使用模糊逻辑对这种二元论进行了研究,该逻辑应用于德国湾(东南北海)的大型数据集。模糊逻辑提供了描述自然系统的复杂模式所需的灵活性。将对象分配给一个以上的类,可以实现过渡的描绘,而避免了僵化地划分为社区或集合体。因此,我们以更自然的方式确定了具有结构或随机物种关联的区域,并绘制了社区或组合之间的边界。然后,我们描述了所选抽样设计对社区识别的影响。在德国之滨中,确定了四个社区,其核心区域和发生的可能性:两栖类-FILIFORMIS,BATHYPOREIA-TELLINA,GONIADELLA-SPISULA和PHORONIS。通过估计重叠和紧密度对它们进行了评估,并通过对β多样性的分析进行了支持。总体而言,研究区域的62%具有物种更新率高和不稳定的特点。这些区域与保护问题非常相关,但是当研究选择信息很少或空间规模较小的抽样设计时,这些区域将变得不可检测。

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