Multi-Mode Deep Matrix and Tensor Factorization
Jicong Fan
摘要
Recently, deep linear and nonlinear matrix factorizations gain increasing attention in the area of machine learning. Existing deep nonlinear matrix factorization methods can only exploit partial nonlinearity of the data and are not effective in handling matrices of which the number of rows is comparable to the number of columns. On the other hand, there is still a gap between deep learning and tensor decomposition. This paper presents a framework of multi-mode deep matrix and tensor factorizations to explore and exploit the full nonlinearity of the data in matrices and tensors. We use the factorization methods to solve matrix and tensor completion problems and prove that our methods have tighter generalization error bounds than conventional matrix and tensor factorization methods. The experiments on synthetic data and real datasets showed that the proposed methods have much higher recovery accuracy than many baselines.
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引用它的顶会 Paper11
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- Generalization Analysis of Deep Non-linear Matrix CompletionAntoine Ledent, Rodrigo AlvesICML 2024 · 被引用 5 次
它引用的顶会 Paper3
- Implicit Regularization in Tensor FactorizationNoam Razin, Asaf Maman, Nadav CohenICML 2021 · 被引用 60 次
- Robust Tensor Decomposition via Orientation Invariant Tubal Nuclear NormsAndong Wang, Chao Li, Zhong Jin, Qibin ZhaoAAAI 2020 · 被引用 33 次
- A novel variational form of the Schatten- quasi-normParis Giampouras, René Vidal, Athanasios A. Rontogiannis, Benjamin D. HaeffeleNeurIPS 2020 · 被引用 22 次
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