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Rahimzamani, Arman; Kannan, Sreeram (, Communication, Control, and Computing (Allerton), 2017 55th Annual Allerton Conference on)The conditional mutual information I(X; Y|Z) measures the average information that X and Y contain about each other given Z. This is an important primitive in many learning problems including conditional independence testing, graphical model inference, causal strength estimation and time-series problems. In several applications, it is desirable to have a functional purely of the conditional distribution py|x, z rather than of the joint distribution pX, Y, Z. We define the potential conditional mutual information as the conditional mutual information calculated with a modified joint distribution pY|X, ZqX, Z, where qX, Z is a potential distribution, fixed airport. We develop K nearest neighbor based estimators for this functional, employing importance sampling, and a coupling trick, and prove the finite k consistency of such an estimator. We demonstrate that the estimator has excellent practical performance and show an application in dynamical system inference.more » « less
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Rahimzamani, Arman; Asnani, Himanshu; Viswanath, Pramod; Kannan, Sreeram (, Advances in neural information processing systems)
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