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Estimating Total Correlation with Mutual Information Estimators

Publication ,  Conference
Bai, K; Cheng, P; Hao, W; Henao, R; Carin, L
Published in: Proceedings of Machine Learning Research
January 1, 2023

Total correlation (TC) is a fundamental concept in information theory which measures statistical dependency among multiple random variables. Recently, TC has shown noticeable effectiveness as a regularizer in many learning tasks, where the correlation among multiple latent embeddings requires to be jointly minimized or maximized. However, calculating precise TC values is challenging, especially when the closed-form distributions of embedding variables are unknown. In this paper, we introduce a unified framework to estimate total correlation values with sample-based mutual information (MI) estimators. More specifically, we discover a relation between TC and MI and propose two types of calculation paths (tree-like and line-like) to decompose TC into MI terms. With each MI term being bounded, the TC values can be successfully estimated. Further, we provide theoretical analyses concerning the statistical consistency of the proposed TC estimators. Experiments are presented on both synthetic and real-world scenarios, where our TC estimators demonstrate effectiveness in all TC estimation, minimization, and maximization tasks. The code is available at https://github.com/Linear95/TCestimation.

Duke Scholars

Published In

Proceedings of Machine Learning Research

EISSN

2640-3498

Publication Date

January 1, 2023

Volume

206

Start / End Page

2147 / 2164
 

Citation

APA
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MLA
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Bai, K., Cheng, P., Hao, W., Henao, R., & Carin, L. (2023). Estimating Total Correlation with Mutual Information Estimators. In Proceedings of Machine Learning Research (Vol. 206, pp. 2147–2164).
Bai, K., P. Cheng, W. Hao, R. Henao, and L. Carin. “Estimating Total Correlation with Mutual Information Estimators.” In Proceedings of Machine Learning Research, 206:2147–64, 2023.
Bai K, Cheng P, Hao W, Henao R, Carin L. Estimating Total Correlation with Mutual Information Estimators. In: Proceedings of Machine Learning Research. 2023. p. 2147–64.
Bai, K., et al. “Estimating Total Correlation with Mutual Information Estimators.” Proceedings of Machine Learning Research, vol. 206, 2023, pp. 2147–64.
Bai K, Cheng P, Hao W, Henao R, Carin L. Estimating Total Correlation with Mutual Information Estimators. Proceedings of Machine Learning Research. 2023. p. 2147–2164.

Published In

Proceedings of Machine Learning Research

EISSN

2640-3498

Publication Date

January 1, 2023

Volume

206

Start / End Page

2147 / 2164