BiCausality (Q99627)

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Binary Causality Inference Framework
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BiCausality
Binary Causality Inference Framework

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    0.1.2
    19 August 2022
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    0.1.3
    22 May 2023
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    0.1.1
    26 May 2022
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    0.1.4
    28 November 2023
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    28 November 2023
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    A framework to infer causality on binary data using techniques in frequent pattern mining and estimation statistics. Given a set of individual vectors S={x} where x(i) is a realization value of binary variable i, the framework infers empirical causal relations of binary variables i,j from S in a form of causal graph G=(V,E) where V is a set of nodes representing binary variables and there is an edge from i to j in E if the variable i causes j. The framework determines dependency among variables as well as analyzing confounding factors before deciding whether i causes j. The publication of this package is at Chainarong Amornbunchornvej, Navaporn Surasvadi, Anon Plangprasopchok, and Suttipong Thajchayapong (2023) <doi:10.1016/j.heliyon.2023.e15947>.
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