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Titlebook: Cause Effect Pairs in Machine Learning; Isabelle Guyon,Alexander Statnikov,Berna Bakir Bat Book 2019 Springer Nature Switzerland AG 2019 C

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楼主: Arthur
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Ost- und westdeutsche Spracheinstellungenhe ChaLearn cause-effect pair challenge have shown that causal directionality can be inferred with good accuracy also in Markov indistinguishable configurations thanks to data driven approaches. This paper proposes a supervised machine learning approach to infer the existence of a directed causal li
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Guido Hoermann,Christian Mertinboth A and B are numerical. However, when A and/or B are categorical, few studies have already been performed..This paper aims to learn the causal direction between two variables by fitting the regressions of X on Y and Y on X with machine learning algorithm and giving preference to the direction th
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The Springer Series on Challenges in Machine Learninghttp://image.papertrans.cn/c/image/222644.jpg
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Conditional Distribution Variability Measures for Causality Detection in the inference of causal-effect relationships. We also study the combination of the proposed measures with standard statistical measures in the framework of the ChaLearn cause-effect pair challenge. The developed model obtains an AUC score of 0.82 on the final test database and ranked second in the challenge.
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