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Matrix Completion

Matrix Completion is a method for recovering lost information. It originates from machine learning and usually deals with highly sparse matrices. Missing or unknown data is estimated using the low-rank matrix of the known data.

Source: A Fast Matrix-Completion-Based Approach for Recommendation Systems

Papers

Showing 76100 of 796 papers

TitleStatusHype
A Linearized Alternating Direction Multiplier Method for Federated Matrix Completion Problems0
A Riemannian gossip approach to subspace learning on Grassmann manifold0
A Denoising View of Matrix Completion0
1-Bit Matrix Completion under Exact Low-Rank Constraint0
Multi-source Learning via Completion of Block-wise Overlapping Noisy Matrices0
A Sequence-Aware Recommendation Method Based on Complex Networks0
A Sparse Interactive Model for Matrix Completion with Side Information0
Asymptotic Convergence Rate of Alternating Minimization for Rank One Matrix Completion0
Asynchronous Parallel Learning for Neural Networks and Structured Models with Dense Features0
Attribute-based Explanations of Non-Linear Embeddings of High-Dimensional Data0
A two-dimensional decomposition approach for matrix completion through gossip0
A Unified Computational and Statistical Framework for Nonconvex Low-Rank Matrix Estimation0
A Unified Convex Surrogate for the Schatten-p Norm0
A Unified Framework for Sparse Relaxed Regularized Regression: SR30
A majorization-minimization algorithm for nonnegative binary matrix factorization0
Autoencoder-based Graph Construction for Semi-supervised Learning0
Multi-target prediction for dummies using two-branch neural networks0
Automotive Radar Sensing with Sparse Linear Arrays Using One-Bit Hankel Matrix Completion0
Background Subtraction via Fast Robust Matrix Completion0
Balancing Accuracy and Diversity in Recommendations using Matrix Completion Framework0
A Max-Norm Constrained Minimization Approach to 1-Bit Matrix Completion0
Basis Pursuit Denoise with Nonsmooth Constraints0
Bayesian Collaborative Bandits with Thompson Sampling for Improved Outreach in Maternal Health Program0
Amplify Graph Learning for Recommendation via Sparsity Completion0
A Riemannian gossip approach to decentralized matrix completion0
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