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A Flexible Optimization Framework for Regularized Matrix-Tensor Factorizations With Linear Couplings

delete2021-04-01
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OA
AI
C
Carla Schenker *
J
Jérémy E. Cohen
E
Evrim Acar
DOI:10.1109/JSTSP.2020.3045848delete
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Abstract

Abstract

En 中文
Coupled matrix and tensor factorizations (CMTF) are frequently used to jointly analyze data from multiple sources, a task also called data fusion. However, different characteristics of datasets stemming from multiple sources pose many challenges in data fusion and require to employ various regularizations, constraints, loss functions and different types of coupling structures between datasets. In this paper, we propose a flexible algorithmic framework for coupled matrix and tensor factorizations which utilizes Alternating Optimization (AO) and the Alternating Direction Method of Multipliers (ADMM). The framework facilitates the use of a variety of constraints, loss functions and couplings with linear transformations in a seamless way. Numerical experiments on simulated and real datasets demonstrate that the proposed approach is accurate, and computationally efficient with comparable or better performance than available CMTF methods for Frobenius norm loss, while being more flexible. Using Kullback-Leibler divergence on count data, we demonstrate that the algorithm yields accurate results also for other loss functions.
Keywords:
Couplings
Tensors
Optimization
Matrix decomposition
Data integration
Signal processing algorithms
Functional magnetic resonance imaging
Tensor factorizations
coupled tensor factorizations
linear couplings
AO-ADMM
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Journal

IEEE Journal of Selected Topics in Signal Processing cover
IEEE Journal of Selected Topics in Signal Processing
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C
centre national de la recherche scientifique (cnrs)
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universite de rennes
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oslo metropolitan university (oslomet)
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