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 251300 of 597 papers

TitleStatusHype
Information-Theoretic Bounds for Adaptive Sparse Recovery0
Information-Theoretic Lower Bounds for Compressive Sensing with Generative Models0
In-sector Compressive Beam Alignment for MmWave and THz Radios0
Instance Optimal Decoding and the Restricted Isometry Property0
Interpretable and Efficient Beamforming-Based Deep Learning for Single Snapshot DOA Estimation0
IoT Connectivity Technologies and Applications: A Survey0
ISAR imaging of space objects using encoded apertures0
Iterative Sparse Identification of Nonlinear Dynamics0
Joint Channel Estimation and Turbo Equalization of Single-Carrier Systems over Time-Varying Channels0
Joint group and residual sparse coding for image compressive sensing0
Joint Localization and Information Transfer for Reconfigurable Intelligent Surface Aided Full-Duplex Systems0
Jointly Sparse Signal Recovery and Support Recovery via Deep Learning with Applications in MIMO-based Grant-Free Random Access0
Joint Matrix Completion and Compressed Sensing for State Estimation in Low-observable Distribution System0
Joint optimization for compressive video sensing and reconstruction under hardware constraints0
Joint Sensing Matrix and Sparsifying Dictionary Optimization for Tensor Compressive Sensing0
JSRNN: Joint Sampling and Reconstruction Neural Networks for High Quality Image Compressed Sensing0
Kinetic Compressive Sensing0
Learning a Common Dictionary for CSI Feedback in FDD Massive MU-MIMO-OFDM Systems0
Learning a Compressive Sensing Matrix with Structural Constraints via Maximum Mean Discrepancy Optimization0
LEARNING GENERATIVE MODELS FOR DEMIXING OF STRUCTURED SIGNALS FROM THEIR SUPERPOSITION USING GANS0
Learning Generative Models of Structured Signals from Their Superposition Using GANs with Application to Denoising and Demixing0
Learning Generative Prior with Latent Space Sparsity Constraints0
LEARN: Learned Experts' Assessment-based Reconstruction Network for Sparse-data CT0
Lensless Imaging by Compressive Sensing0
Lensless Imaging with Compressive Ultrafast Sensing0
License Plate Recognition with Compressive Sensing Based Feature Extraction0
Limits on Support Recovery with Probabilistic Models: An Information-Theoretic Framework0
Linear Inverse Problems Using a Generative Compound Gaussian Prior0
Line-based compressive sensing for low-power visual applications0
Lipschitz Learning for Signal Recovery0
LiSens --- A Scalable Architecture for Video Compressive Sensing0
Lottery Image Prior0
Low-Complexity CSI Feedback for FDD Massive MIMO Systems via Learning to Optimize0
Low-complexity Sparse Array Synthesis Based on Off-grid Compressive Sensing0
Low-Complexity Super-Resolution Signature Estimation of XL-MIMO FMCW Radar0
Low-Cost Compressive Sensing for Color Video and Depth0
Low-dimensional Models in Spatio-Temporal Wind Speed Forecasting0
Low dosage 3D volume fluorescence microscopy imaging using compressive sensing0
Low-Rank and Sparse Matrix Decomposition with a-priori knowledge for Dynamic 3D MRI reconstruction0
LR-CSNet: Low-Rank Deep Unfolding Network for Image Compressive Sensing0
Machine Learning Prediction for Phase-less Millimeter-Wave Beam Tracking0
MAP Support Detection for Greedy Sparse Signal Recovery Algorithms in Compressive Sensing0
Masking Strategies for Image Manifolds0
Matching Pursuit LASSO Part II: Applications and Sparse Recovery over Batch Signals0
Mathematical Foundation of Sparsity-based Multi-snapshot Spectral Estimation0
MC-ISTA-Net: Adaptive Measurement and Initialization and Channel Attention Optimization inspired Neural Network for Compressive Sensing0
Measurement-Adaptive Sparse Image Sampling and Recovery0
Minimum-fuel Spacecraft Rendezvous based on Sparsity Promoting Optimization0
Mixed one-bit compressive sensing with applications to overexposure correction for CT reconstruction0
Model-based Decentralized Bayesian Algorithm for Distributed Compressed Sensing0
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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