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首页> 外文期刊>Ecological indicators >Application of association analysis for identifing indicator taxa of vulnerable marine ecosystems in the Emperor Seamounts area, North Pacific Ocean
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Application of association analysis for identifing indicator taxa of vulnerable marine ecosystems in the Emperor Seamounts area, North Pacific Ocean

机译:关联分析在识别北太平洋皇帝海山地区脆弱海洋生态系统指标分类中的应用

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摘要

Reflecting the growing interest in ecosystem-based fishery management, deep sea bottom fisheries are being called upon to minimize adverse impacts on vulnerable marine ecosystems (VMEs), communities of marine organisms susceptible to anthropogenic disturbance. Many fishery management organizations have introduced indicator-based management measures for VME conservation, such as encounter protocols, in which VME indicator species and bycatch weight thresholds are assigned. If the bycatch amount of the indicator species in a fishing operation exceeds the predetermined threshold, the fishing vessel halts the fishing operation and moves a certain distance away from the encounter point. However, the representativeness of VME indicator taxa has not been evaluated quantitatively. In this study, we analyzed the co-occurrence of benthic animals collected by scientific bottom tow-net surveys in the Emperor Seamounts area, North Pacific Ocean, to characterize benthic communities in the area and to examine the ability of six candidate indicator taxa (gorgonians, Alcyonacea excluding gorgonians, Antipatharia, Scleractinia, Stylasterina, and Porifera) to represent the local benthic communities. Cluster analysis revealed four clusters of benthic communities, each of which includes both sessile and mobile benthos: (1) gorgonians-Scleractinia community with many mobile benthic taxa and Pisces; (2) Porifera-Stylasterina community with Polychaeta and Bivalvia; (3) Antipatharia-Alcyonacea (excluding gorgonians) community with Cephalopoda; and (4) Zoanthidea-Pennatulacea community with Crinoidae and Holothuroidea. The first cluster included the largest number of taxa and showed strong tendencies of co-occurrence, possibly reflecting the habitat-providing function of gorgonians and Scleractinia as well as the common environmental preferences of filter feeders, which constitute major components of the cluster. We used association analysis to identify VME indicator species in the study area. Association analysis reveals relationships between items in the form of association rules, where the occurrence of an "antecedent" {A} implies the co-occurrence of a "consequent" {B}; {A} and {B} contain items, in this case, taxa. Association analysis applied to the co-occurrence data extracted many effective association rules that include gorgonians or Scleractinia as the consequent and many benthic taxa as antecedents. These results demonstrate that gorgonians and Scleractinia are effective VME indicators in the study area because they co-occur with many other benthic animals and represent VME characteristics such as functional significance as habitat and structural complexity as well as fragility and slow recovery from physical damage. (C) 2017 Elsevier Ltd. All rights reserved.
机译:为了反映对基于生态系统的渔业管理日益增长的兴趣,呼吁深海底渔业尽量减少对脆弱的海洋生态系统(VME),易受人为干扰的海洋生物群落的不利影响。许多渔业管理组织为VME保护引入了基于指标的管理措施,例如encounter遇协议,其中指定了VME指标种类和兼捕重量阈值。如果在捕捞作业中指示物种类的兼捕量超过预定阈值,则渔船停止捕捞作业并远离相遇点一定距离。但是,VME指标分类单元的代表性尚未得到定量评估。在这项研究中,我们分析了北太平洋Emperor Seamounts地区通过科学底拖网调查收集的底栖动物的共现情况,以表征该地区的底栖动物群落并检查了六个候选指示生物分类群,Alcyonacea(不包括高哥人,Antipatharia,Scleractinia,Stylasterina和Porifera)代表本地底栖生物群落。聚类分析揭示了四个底栖生物群落,每一个都包括无柄和活动底栖动物:(1)具高活动底栖生物分类群和双鱼座的高哥人-Scleractinia群落; (2)带有Polychaeta和Bivalvia的Porifera-Stylasterina社区; (3)带有头足类动物的抗病原体-Alcyonacea(不包括高良姜)群落; (4)Zoanthidea-Pennatulacea群落,其中有唇科和虎耳科。第一个集群包括数量最多的分类单元,并显示出强烈的共生趋势,这可能反映了高哥人和Scleractinia的生境提供功能,以及构成该集群主要组成部分的滤嘴的共同环境偏好。我们使用关联分析来确定研究区域内的VME指标种类。关联分析以关联规则的形式揭示了项目之间的关系,其中“先行者” {A}的出现暗示了“结果者” {B}的同时出现; {A}和{B}包含项目,在这种情况下为分类单元。应用于共现数据的关联分析提取了许多有效的关联规则,其中包括高古氏菌或巩膜菌为结果,而许多底​​栖生物为先例。这些结果表明,gorgonians和Scleractinia是研究区域中有效的VME指标,因为它们与许多其他底栖动物同时出现,并表现出VME特征,例如功能重要性(如生境和结构复杂性)以及脆弱性和从物理破坏中恢复缓慢。 (C)2017 Elsevier Ltd.保留所有权利。

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