SOTAVerified

Compressive Sensing

Compressive Sensing is a new signal processing framework for efficiently acquiring and reconstructing a signal that have a sparse representation in a fixed linear basis.

Source: Sparse Estimation with Generalized Beta Mixture and the Horseshoe Prior

Papers

Showing 451475 of 597 papers

TitleStatusHype
Non-Local Compressive Sensing Based SAR Tomography0
Nonlocal Low-Rank Tensor Factor Analysis for Image Restoration0
Non-Parametric Bayesian Dictionary Learning for Sparse Image Representations0
Object tracking in video signals using Compressive Sensing0
Off-grid Multi-Source Passive Localization Using a Moving Array0
One-Bit Compressive Sensing: Can We Go Deep and Blind?0
One-bit compressive sensing with norm estimation0
One Bit to Rule Them All : Binarizing the Reconstruction in 1-bit Compressive Sensing0
On Generalization Bounds for Deep Compound Gaussian Neural Networks0
On Grid Compressive Sampling for Spherical Field Measurements in Acoustics0
On Identification of Sparse Multivariable ARX Model: A Sparse Bayesian Learning Approach0
On reconstruction algorithms for signals sparse in Hermite and Fourier domains0
On Recoverability of Randomly Compressed Tensors with Low CP Rank0
Onsager-corrected deep learning for sparse linear inverse problems0
On the Fundamental Limits of Recovering Tree Sparse Vectors from Noisy Linear Measurements0
A Hierarchical View of Structured Sparsity in Kronecker Compressive Sensing0
On the Suboptimality of Proximal Gradient Descent for ^0 Sparse Approximation0
Optimal Data Detection and Signal Estimation in Systems with Input Noise0
Optimal Sensor Placement and Enhanced Sparsity for Classification0
Optimization Guarantees of Unfolded ISTA and ADMM Networks With Smooth Soft-Thresholding0
Optimization of retina-like illumination patterns in ghost imaging0
Optimized Structured Sparse Sensing Matrices for Compressive Sensing0
Optimizing Binary Symptom Checkers via Approximate Message Passing0
PALMS: Parallel Adaptive Lasso with Multi-directional Signals for Latent Networks Reconstruction0
Parameterless Optimal Approximate Message Passing0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1DMP-DUN-Plus (4-step)Average PSNR42.82Unverified
2AMPA-NetAverage PSNR40.32Unverified
#ModelMetricClaimedVerifiedStatus
1AMPA-NetAverage PSNR36.33Unverified
#ModelMetricClaimedVerifiedStatus
1AMPA-NetAverage PSNR35.95Unverified
#ModelMetricClaimedVerifiedStatus
1AMPA-NetAverage PSNR35.86Unverified