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 501525 of 597 papers

TitleStatusHype
Structured Sparsity: Discrete and Convex approaches0
Ambient Occlusion via Compressive Visibility Estimation0
Reweighted Laplace Prior Based Hyperspectral Compressive Sensing for Unknown Sparsity0
Pinball Loss Minimization for One-bit Compressive Sensing: Convex Models and Algorithms0
Bayesian Sparse Tucker Models for Dimension Reduction and Tensor CompletionCode0
Blind Compressive Sensing Framework for Collaborative Filtering0
FPA-CS: Focal Plane Array-based Compressive Imaging in Short-wave Infrared0
Simultaneously sparse and low-rank abundance matrix estimation for hyperspectral image unmixing0
Robust Bayesian compressive sensing with data loss recovery for structural health monitoring signals0
Compressed sensing MRI using masked DCT and DFT measurements0
LiSens --- A Scalable Architecture for Video Compressive Sensing0
Video Compressive Sensing for Spatial Multiplexing Cameras using Motion-Flow Models0
Low-dimensional Models in Spatio-Temporal Wind Speed Forecasting0
Compressive Hyperspectral Imaging with Side Information0
Comparison of Algorithms for Compressed Sensing of Magnetic Resonance Images0
Limits on Support Recovery with Probabilistic Models: An Information-Theoretic Framework0
Separation of undersampled composite signals using the Dantzig selector with overcomplete dictionaries0
Reconstruction-free action inference from compressive imagers0
Fast Sublinear Sparse Representation using Shallow Tree Matching Pursuit0
Efficient Sampling for Learning Sparse Additive Models in High Dimensions0
Compressive Sensing of Signals from a GMM with Sparse Precision Matrices0
Low-Rank and Sparse Matrix Decomposition with a-priori knowledge for Dynamic 3D MRI reconstruction0
Fast Iteratively Reweighted Least Squares Algorithms for Analysis-Based Sparsity Reconstruction0
Sparse Estimation with Generalized Beta Mixture and the Horseshoe Prior0
Tree-Structure Bayesian Compressive Sensing for Video0
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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