Tensor denoising and completion based on ordinal observations
Chanwoo Lee, Miaoyan Wang
Abstract
Higher-order tensors arise frequently in applications such as neuroimaging, recommendation system, social network analysis, and psychological studies. We consider the problem of low-rank tensor estimation from possibly incomplete, ordinal-valued observations. Two related problems are studied, one on tensor denoising and another on tensor completion. We propose a multi-linear cumulative link model, develop a rank-constrained M-estimator, and obtain theoretical accuracy guarantees. Our mean squared error bound enjoys a faster convergence rate than previous results, and we show that the proposed estimator is minimax optimal under the class of low-rank models. Furthermore, the procedure developed serves as an efficient completion method which guarantees consistent recovery of an order- -dimensional low-rank tensor using only noisy, quantized observations. We demonstrate the outperformance of our approach over previous methods on the tasks of clustering and collaborative filtering.
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Install the CLIlune papers fulltext 41d5efe5-0b95-4f99-9943-929b15a91754Cited by top-tier papers2
- Beyond the Signs: Nonparametric Tensor Completion via Sign SeriesChanwoo Lee, Miaoyan WangNeurIPS 2021 · 6 citations
- Under-Counted Tensor Completion with Neural Incorporation of AttributesShahana Ibrahim, Xiao Fu, Rebecca A. Hutchinson, Eugene SeoICML 2023 · 3 citations
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