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Mining candidate causal relationships in movement patterns

机译:挖掘运动模式中的候选因果关系

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摘要

In many applications, the environmental context for and drivers of movement patterns are just as important as the patterns themselves. This article adapts standard data mining techniques, combined with a foundational ontology of causation, with the objective of helping domain experts identify candidate causal relationships between movement patterns and their environmental context. In addition to data about movement and its dynamic environmental context, our approach requires as input definitions of the states and events of interest. The technique outputs causal and causal-like relationships of potential interest, along with associated measures of support and confidence. As a validation of our approach, the analysis is applied to real data about fish movement in the Murray River in Australia. The results demonstrate that the technique is capable of identifying statistically significant patterns of movement indicative of causal and causal-like relationships.
机译:在许多应用中,运动模式的环境背景和动因与模式本身一样重要。本文采用标准数据挖掘技术,并结合了因果关系的基础本体,目的是帮助领域专家识别运动模式与其环境背景之间的候选因果关系。除了有关运动及其动态环境的数据外,我们的方法还要求将感兴趣的状态和事件作为输入定义。该技术输出潜在兴趣的因果关系和类似因果关系,以及相关的支持和信心度量。为了验证我们的方法,该分析被应用于有关澳大利亚墨累河鱼类运动的真实数据。结果表明,该技术能够识别指示因果关系和因果关系的运动的统计学显着模式。

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