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A data-mining approach to determine the spatio-temporal relationship between environmental factors and fish distribution

机译:一种确定环境因素与鱼类分布之间时空关系的数据挖掘方法

摘要

The interaction between environmental factors and the spatiotemporal dynamics of living organism is an important aspect in ecology. We describe here a data-mining approach - the spatiotemporal assignment mining model (STAMM) - to extract the spatiotemporal pattern, or assignment of environmental factors, which control the distribution of a living organism. In STAMM, the spatiotemporal assignment of environmental factors is expressed via neighbourhood rules which will reflect the fuzzy or uncertain prior knowledge about the relationship. The values of cells or points in the neighbourhood and the relationships are used to construct a decision table. Indices expressing the probabilities of the ecological association rules are recursively processed in order to determine the spatiotemporal assignment. These rules are objective assessments of our prior knowledge and they refine our knowledge and understanding of the ecosystem. As a case study, we used this model to study the temperature pattern which controls the assembling of fish in the Dasha area of the Yellow Sea in China.
机译:环境因素与生物体时空动态之间的相互作用是生态学的一个重要方面。我们在这里描述一种数据挖掘方法-时空分配挖掘模型(STAMM)-提取时空模式或环境因素的分配,以控制生物体的分布。在STAMM中,环境因素的时空分配是通过邻域规则表达的,它将反映关于该关系的模糊或不确定的先验知识。邻域中的像元或点的值以及它们之间的关系用于构建决策表。为了确定时空分配,递归处理了表示生态关联规则概率的指数。这些规则是对我们现有知识的客观评估,它们完善了我们对生态系统的知识和理解。作为案例研究,我们使用该模型研究了控制中国黄海大沙地区鱼类聚集的温度模式。

著录项

  • 作者

    Su F; Zhou C; Lyne V; Du Y; Shi W;

  • 作者单位
  • 年度 2004
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 入库时间 2022-08-20 20:56:14

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