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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 301325 of 796 papers

TitleStatusHype
Conservative Stochastic Optimization with Expectation Constraints0
A Riemannian gossip approach to decentralized matrix completion0
Connectivity Shapes Implicit Regularization in Matrix Factorization Models for Matrix Completion0
On Using Hamiltonian Monte Carlo Sampling for Reinforcement Learning Problems in High-dimension0
Conic Descent and its Application to Memory-efficient Optimization over Positive Semidefinite Matrices0
Algebraic-Combinatorial Methods for Low-Rank Matrix Completion with Application to Athletic Performance Prediction0
Guaranteed Matrix Completion via Non-convex Factorization0
Confidence Intervals of Treatment Effects in Panel Data Models with Interactive Fixed Effects0
Guaranteed Matrix Completion Under Multiple Linear Transformations0
A Rank-Corrected Procedure for Matrix Completion with Fixed Basis Coefficients0
Graph Sampling for Matrix Completion Using Recurrent Gershgorin Disc Shift0
Harmonic Retrieval Using Weighted Lifted-Structure Low-Rank Matrix Completion0
Hierarchical Clustering and Matrix Completion for the Reconstruction of World Input-Output Tables0
Hierarchical Matrix Completion for the Prediction of Properties of Binary Mixtures0
High Dimensional Factor Analysis with Weak Factors0
High Dimensional Statistical Estimation under Uniformly Dithered One-bit Quantization0
High-dimensional Time Series Prediction with Missing Values0
High-Rank Matrix Completion and Clustering under Self-Expressive Models0
Graph Regularized Probabilistic Matrix Factorization for Drug-Drug Interactions Prediction0
Concentration properties of fractional posterior in 1-bit matrix completion0
Graph Neural Networks for Temperature-Dependent Activity Coefficient Prediction of Solutes in Ionic Liquids0
Identifying global optimality for dictionary learning0
Concentration of tempered posteriors and of their variational approximations0
IHT-Inspired Neural Network for Single-Snapshot DOA Estimation with Sparse Linear Arrays0
A Proximal Modified Quasi-Newton Method for Nonsmooth Regularized Optimization0
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