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Yonina Eldar

4 accepted papers

2026

COMPRESSED BC-LISTA VIA LOW-RANK CONVOLUTIONAL DECOMPOSITION

ICASSP 2026poster

We study Sparse Signal Recovery (SSR) methods for multichannel imaging with compressed {forward and backward} operators that preserve reconstruction accuracy. We propose a Compressed Block-Convolutional (C-BC) measurement model based on a low-rank Convolutional Neural Network (CNN) decomposition tha…

Cited by 0SourcePDFScholar
2021

A Wasserstein Minimax Framework for Mixed Linear Regression

ICML 2021oral

Multi-modal distributions are commonly used to model clustered data in statistical learning tasks. In this paper, we consider the Mixed Linear Regression (MLR) problem. We propose an optimal transport-based framework for MLR problems, Wasserstein Mixed Linear Regression (WMLR), which minimizes the W…

2016

Sparse Nonlinear Regression: Parameter Estimation under Nonconvexity

ICML 2016poster

We study parameter estimation for sparse nonlinear regression. More specifically, we assume the data are given by y = f( \bf x^T \bf β^* ) + ε, where f is nonlinear. To recover \bf βs, we propose an \ell_1-regularized least-squares estimator. Unlike classical linear regression, the corresponding opt…

Cited by 56SourcePDFScholar