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Detecting and quantifying causal associations in large nonlinear time series datasets

Science Advances · 2019 · Vol. 5(11) · pp. eaau4996–eaau4996
Jakob RungePeer NowackMarlene KretschmerSeth FlaxmanDino Sejdinovic

Abstract

Identifying causal relationships and quantifying their strength from observational time series data are key problems in disciplines dealing with complex dynamical systems such as the Earth system or the human body. Data-driven causal inference in such systems is challenging since datasets are often high dimensional and nonlinear with limited sample sizes. Here, we introduce a novel method that flexibly combines linear or nonlinear conditional independence tests with a causal discovery algorithm to estimate causal networks from large-scale time series datasets. We validate the method on time series of well-understood physical mechanisms in the climate system and the human heart and using large-scale synthetic datasets mimicking the typical properties of real-world data. The experiments demonstrate that our method outperforms state-of-the-art techniques in detection power, which opens up entirely new possibilities to discover and quantify causal networks from time series across a range of research fields.

Bayesian Modeling and Causal InferenceTime Series Analysis and ForecastingExplainable Artificial Intelligence (XAI)Causal inferenceSeries (stratigraphy)Conditional independenceNonlinear systemTime seriesInferenceKey (lock)Independence (probability theory)

Funding

  • Engineering and Physical Sciences Research Council
Citations
785
FWCI
31.69
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68
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100%
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References
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Physical Review E · 2004 · 3,955 citations
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