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Generalized Liquid Association Analysis for Multimodal Data Integration

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  • Lexin Li
  • Jing Zeng
  • Xin Zhang

Abstract

Multimodal data are now prevailing in scientific research. One of the central questions in multimodal integrative analysis is to understand how two data modalities associate and interact with each other given another modality or demographic variables. The problem can be formulated as studying the associations among three sets of random variables, a question that has received relatively less attention in the literature. In this article, we propose a novel generalized liquid association analysis method, which offers a new and unique angle to this important class of problems of studying three-way associations. We extend the notion of liquid association from the univariate setting to the sparse, multivariate, and high-dimensional setting. We establish a population dimension reduction model, transform the problem to sparse Tucker decomposition of a three-way tensor, and develop a higher-order orthogonal iteration algorithm for parameter estimation. We derive the nonasymptotic error bound and asymptotic consistency of the proposed estimator, while allowing the variable dimensions to be larger than and diverge with the sample size. We demonstrate the efficacy of the method through both simulations and a multimodal neuroimaging application for Alzheimer’s disease research. Supplementary materials for this article are available online.

Suggested Citation

  • Lexin Li & Jing Zeng & Xin Zhang, 2023. "Generalized Liquid Association Analysis for Multimodal Data Integration," Journal of the American Statistical Association, Taylor & Francis Journals, vol. 118(543), pages 1984-1996, July.
  • Handle: RePEc:taf:jnlasa:v:118:y:2023:i:543:p:1984-1996
    DOI: 10.1080/01621459.2021.2024437
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