Transfer Entropy as a Log-Likelihood Ratio

被引:87
|
作者
Barnett, Lionel [1 ]
Bossomaier, Terry [2 ]
机构
[1] Univ Sussex, Sch Informat, Sackler Ctr Consciousness Sci, Brighton BN1 9QJ, E Sussex, England
[2] Charles Sturt Univ, Ctr Res Complex Syst, Bathurst, NSW 2795, Australia
关键词
INFORMATION-TRANSFER; TIME-SERIES; LINEAR-DEPENDENCE; GRANGER CAUSALITY; FEEDBACK; CONNECTIVITY; FMRI;
D O I
10.1103/PhysRevLett.109.138105
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Transfer entropy, an information-theoretic measure of time-directed information transfer between joint processes, has steadily gained popularity in the analysis of complex stochastic dynamics in diverse fields, including the neurosciences, ecology, climatology, and econometrics. We show that for a broad class of predictive models, the log-likelihood ratio test statistic for the null hypothesis of zero transfer entropy is a consistent estimator for the transfer entropy itself. For finite Markov chains, furthermore, no explicit model is required. In the general case, an asymptotic chi(2) distribution is established for the transfer entropy estimator. The result generalizes the equivalence in the Gaussian case of transfer entropy and Granger causality, a statistical notion of causal influence based on prediction via vector autoregression, and establishes a fundamental connection between directed information transfer and causality in the Wiener-Granger sense.
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页数:5
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