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Extracting Causal Rules from Spatio-Temporal Data

机译:从时空数据中提取因果规则

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This paper is concerned with the problem of detecting causality in spatiotemporal data. In contrast to most previous work on causality, we adopt a logical rather than a probabilistic approach. By denning the logical form of the desired causal rules, the algorithm developed in this paper searches for instances of rules of that form that explain as fully as possible the observations found in a data set. Experiments with synthetic data, where the underlying causal rules are known, show that in many cases the algorithm is able to retrieve close approximations to the rules that generated the data. However, experiments with real data concerning the movement of fish in a large Australian river system reveal significant practical limitations, primarily as a consequence of the coarse granularity of such movement data. In response, instead of focusing on strict causation (where an environmental event initiates a movement event), further experiments focused on perpetuation (where environmental conditions are the drivers of ongoing processes of movement). After retasking to search for a different logical form of rules compatible with perpetuation, our algorithm was able to identify perpetuation rules that explain a significant proportion of the fish movements. For example, approximately one fifth of the detected long-range movements of fish over a period of six years were accounted for by 26 rules taking account of variations in water-level alone.
机译:本文涉及时空数据中检测因果关系的问题。与以往大多数因果关系研究相反,我们采用逻辑而非概率方法。通过定义所需因果规则的逻辑形式,本文开发的算法搜索该形式规则的实例,这些实例尽可能充分地解释了在数据集中发现的观察结果。在已知潜在因果规则的情况下,对合成数据进行的实验表明,在许多情况下,该算法都可以检索与生成数据的规则的近似值。但是,使用有关大型澳大利亚河系中鱼类运动的真实数据进行的实验显示出重大的实际局限性,这主要是由于此类运动数据的粗粒度所致。作为回应,不是专注于严格的因果关系(环境事件引发了运动事件),而是进一步的实验着眼于永续性(环境条件是进行中的运动过程的驱动力)。在重新分配任务以搜索与永续兼容的不同逻辑规则规则后,我们的算法能够识别出永续规则,这些规则可以解释很大比例的鱼类运动。例如,在六年内检测到的鱼类远距离运动中,大约有五分之一是由26条规则所占,仅考虑水位的变化。

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